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Guide 05 · Part I

Genetics Schizophrenia

Paper I · Basic Sciences. Six study modes, from notes to quick review.

Most askedpharmacogenetics in psychiatrygenetics of schizophreniagenetic epidemiology study designstwin and adoption studiesCYP450 polymorphismsGWAS and candidate genes
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Chapter 01

Study Notes

Exam: PG exams MD Psychiatry, Sep 2026


1. Basic Genetics Review

1.1 DNA, Genes, and Alleles

1.2 Types of Mutations

TypeMechanismExample
Point mutationSingle nucleotide change (missense, nonsense, silent)Sickle cell (missense)
FrameshiftInsertion or deletion shifts reading frameTay-Sachs disease
Trinucleotide repeatExpansion of 3-base repeats beyond thresholdHuntington (CAG), Fragile X (CGG)
ChromosomalAneuploidy, deletions, duplications, translocationsDown syndrome (trisomy 21)

Trinucleotide repeat disorders relevant to psychiatry:

1.3 Chromosomal Abnormalities

1.4 Mendelian vs Complex Inheritance

FeatureMendelianComplex (Multifactorial)
Genes involvedSingle geneMultiple genes + environment
PatternPredictable ratiosNo clear ratios
PenetranceOften highVariable, often low
ExamplesHuntington, PKUSchizophrenia, bipolar, diabetes

1.5 Key Genetic Concepts

Exam Pearl

Schizophrenia's incomplete penetrance (MZ concordance ~48%, not 100%) is the key argument against Mendelian inheritance and supports the polygenic model.


2. Genetic Study Designs

2.1 Family Studies

Schizophrenia family data:

RelationshipShared GenesRisk
General population1%
First-degree relative50%~10%
Second-degree relative25%~3%
MZ twin100%~48%
DZ twin50%~17%
Child of two affected parents~46%

Limitation: Cannot separate genetic from environmental factors (shared family environment)

Exam Pearl

Key conclusion from adoption studies (below): Genetic factors are the primary driver; being raised by a schizophrenic parent alone does not increase risk.

2.2 Twin Studies

Heritability estimation:

Exam Pearl

Heritability (h2) = 2(rMZ - rDZ)

Where r = concordance rate. For schizophrenia:

Exam Pearl

h2 = 2(0.48 - 0.17) = 2(0.31) = 0.62 (from concordance data) More sophisticated modeling estimates: ~0.80

Equal environments assumption: Assumes MZ and DZ twins share environment equally. If violated (MZ treated more similarly), heritability may be overestimated.

2.3 Adoption Studies

Separate genetic from environmental contributions by studying individuals raised away from biological parents.

StudyDesignFinding
Heston (1966)Children of schizophrenic mothers adopted away10.6% developed schizophrenia vs 0% controls
Kety (1968, Danish)Biological vs adoptive relatives of adopted schizophrenicsHigher rates in biological relatives
Cross-fosteringChildren of healthy parents raised by schizophrenic parentsNo increased risk

Key conclusion: Genetic factors are the primary driver; being raised by a schizophrenic parent alone does not increase risk.

Exam Pearl

Candidate gene studies were largely underpowered and most findings did not replicate in GWAS. GWAS has superseded this approach.

2.4 Linkage Analysis

2.5 Association Studies

2.6 GWAS (Genome-Wide Association Studies)

Strengths: Unbiased, can discover novel pathways

Limitations: Detects only common variants (MAF >1%), small effect sizes (OR typically 1.05-1.2), requires enormous samples (tens of thousands), explains only a fraction of heritability

2.7 Copy Number Variants (CNVs)

2.8 Whole Exome / Whole Genome Sequencing


3. Genetics of Schizophrenia (MAIN FOCUS)

3.1 Overview

3.2 Candidate Gene Era

These genes were studied based on the dopamine and glutamate hypotheses. Most findings from candidate gene studies have not replicated in GWAS, but they remain important for exam answers and understanding neurobiology.

GeneFull NameChromosomeFunctionKey Finding
DISC1Disrupted in Schizophrenia 11q42Neurodevelopment, synaptic plasticityIdentified via balanced translocation in Scottish family
NRG1Neuregulin 18p12Glutamate signaling, myelinationIcelandic linkage study; role in NMDA receptor function
DTNBP1Dysbindin6p22Glutamate release, synaptic functionReduced expression in schizophrenia postmortem brains
COMTCatechol-O-Methyltransferase22q11Dopamine metabolism in PFCVal158Met polymorphism; Val allele = higher activity = lower PFC dopamine
RGS4Regulator of G-protein Signaling 41q23Signal transductionReduced expression in PFC of schizophrenia patients
Exam Pearl

Candidate gene studies were largely underpowered and most findings did not replicate. GWAS has superseded this approach. Know the five candidate genes (DISC1, NRG1, DTNBP1, COMT, RGS4) for exam answers even though they are not GWAS-confirmed.

3.3 GWAS Findings

Landmark study: Schizophrenia Working Group of the PGC (2014)

Key GWAS findings:

Locus/Gene · Significance
MHC region / C4 (complement component 4) Strongest association; C4A overexpression leads to excessive synaptic pruning in adolescence -- links genetics to neurodevelopmental model
DRD2 Dopamine D2 receptor; validates dopamine hypothesis; target of all antipsychotics
Glutamate pathway genes (GRM3, GRIN2A, SRR, GRIA1) Support glutamate/NMDA hypofunction hypothesis
Calcium channel genes (CACNA1C, CACNB2) Shared with bipolar disorder; voltage-gated calcium signaling
TCF4 Transcription factor involved in neurodevelopment

C4 and synaptic pruning (Sekar et al., 2016):

Exam Pearl

The C4/MHC finding (Sekar et al., 2016) is the key bridge between GWAS statistics and a specific neurobiological mechanism (synaptic pruning). It is a high-yield conceptual anchor.

3.4 Copy Number Variants in Schizophrenia

CNVTypeRisk (OR)Key Features
22q11.2 deletionDeletion25x riskDiGeorge/VCFS; 25-30% develop psychosis; most robust CNV finding
1q21.1 deletionDeletion~3xAlso associated with ASD, ID
15q13.3 deletionDeletion~2xContains CHRNA7 (nicotinic receptor)
NRXN1 deletionDeletion~2xNeurexin 1; synaptic adhesion molecule
16p11.2 duplicationDuplication~3xAlso associated with ASD (deletion)
3q29 deletionDeletion~40xRare but very high penetrance

22q11.2 deletion syndrome (DiGeorge/VCFS) -- HIGH YIELD:

Exam Pearl

22q11.2 deletion is the single strongest known genetic risk factor for schizophrenia (after MZ twin status). Know the clinical features of DiGeorge/VCFS: cardiac defects, palatal abnormalities, hypocalcemia, T-cell deficiency.

3.5 Polygenic Risk Scores (PRS)

3.6 Two-Hit Hypothesis

  1. First hit: Genetic vulnerability (polygenic risk, CNVs, or rare mutations)
  2. Second hit: Environmental insult (prenatal infection, obstetric complications, cannabis use, childhood adversity, urban living, migration)

Both hits are necessary for the disorder to manifest. Explains:

3.7 Neurodevelopmental Model


4. Epigenetics in Psychiatry

4.1 Core Concepts

Epigenetics = heritable changes in gene expression that do NOT involve changes in DNA sequence.

MechanismDescriptionEffect
DNA methylationAddition of methyl group to cytosine (CpG sites)Usually silences gene expression
Histone modificationAcetylation, methylation, phosphorylation of histone tailsAlters chromatin structure (open vs closed)
Non-coding RNAmicroRNA, long non-coding RNAPost-transcriptional gene regulation

4.2 Epigenetics in Schizophrenia

4.3 Environmental Triggers of Epigenetic Change

4.4 Transgenerational Epigenetic Effects


5. Gene-Environment Interactions (GxE)

A GxE interaction occurs when the effect of an environmental exposure on a phenotype depends on the individual's genotype (or vice versa).

5.1 Classic GxE Studies

GxEGeneEnvironmentOutcomeReference
MAOA x maltreatmentMAOA-L (low activity)Childhood maltreatmentAntisocial behaviorCaspi et al., 2002
5-HTTLPR x stressShort alleleStressful life eventsDepressionCaspi et al., 2003
FKBP5 x traumaRisk allelesChildhood traumaPTSD risk, HPA axis dysregulationBinder et al., 2008
COMT x cannabisVal/Val genotypeCannabis use in adolescencePsychosis riskCaspi et al., 2005
AKT1 x cannabisrs2494732 C/CCannabis use7x increased schizophrenia riskDi Forti et al., 2012

5.2 Important Caveats

5.3 Diathesis-Stress vs Differential Susceptibility

Exam Pearl

5-HTTLPR x stress is the most debated GxE finding, Culverhouse et al. (2018) found no support in >40,000 subjects. Know this for critical analysis questions.


6. Pharmacogenetics and Pharmacogenomics

6.1 Definitions

6.2 CYP450 System

The cytochrome P450 enzymes are the primary drug-metabolizing system. Four enzymes metabolize the majority of psychotropic medications.

CYP EnzymeKey Substrates (Psychiatry)Key InhibitorsKey Inducers
CYP1A2Clozapine, olanzapine, fluvoxamine, duloxetine, melatoninFluvoxamine, ciprofloxacinSmoking (PAHs), omeprazole, carbamazepine
CYP2D6Most SSRIs (fluoxetine, paroxetine), venlafaxine, TCAs (nortriptyline, desipramine), risperidone, aripiprazole, haloperidol, codeine, atomoxetineFluoxetine, paroxetine, bupropion, quinidineNot significantly inducible
CYP2C19Citalopram, escitalopram, sertraline, diazepam, clobazam, proton pump inhibitorsFluvoxamine, fluoxetine, omeprazoleRifampin
CYP3A4Quetiapine, ziprasidone, lurasidone, buspirone, midazolam, alprazolam, carbamazepineKetoconazole, itraconazole, erythromycin, grapefruit juiceCarbamazepine, phenytoin, rifampin, St. John's Wort
Exam Pearl

CYP1A2 and clozapine + smoking: Smoking induces CYP1A2 faster clozapine metabolism lower levels. If a patient on stable clozapine stops smoking (e.g., hospitalization) CYP1A2 induction lost clozapine levels rise risk of toxicity (seizures, sedation, neutropenia). Clinical rule: Reduce clozapine dose by ~25-50% when a patient stops smoking.

6.3 Metabolizer Phenotypes

PhenotypeEnzyme ActivityClinical Implication
Poor metabolizer (PM)No functional copiesDrug accumulates; higher risk of side effects at standard doses
Intermediate metabolizer (IM)Reduced activityMildly elevated drug levels; may need dose reduction
Extensive/Normal metabolizer (NM)Normal activityStandard dosing
Ultrarapid metabolizer (UM)Increased activity (gene duplication)Drug cleared too fast; therapeutic failure at standard doses

CYP2D6 examples:

6.4 HLA Pharmacogenetics

HLA AlleleDrugAdverse ReactionPopulation
HLA-B*1502Carbamazepine, oxcarbazepine, phenytoinStevens-Johnson Syndrome (SJS) / Toxic Epidermal Necrolysis (TEN)Southeast Asian, South Asian, East Asian populations
HLA-A*3101CarbamazepineMaculopapular rash, SJS, DRESSEuropean, Japanese populations
HLA-B*5801AllopurinolSJS/TENSoutheast Asian
Clinical Anchor

FDA recommends HLA-B*1502 testing before starting carbamazepine in patients with Asian ancestry. If positive, do NOT use carbamazepine.

6.5 Pharmacogenomic Testing in Clinical Practice

6.6 Personalized Medicine


7. Genetics of Other Psychiatric Disorders (Brief)

7.1 Bipolar Disorder

7.2 ADHD

7.3 Autism Spectrum Disorder

7.4 Alzheimer Disease

GeneRoleInheritance
APOE e4Risk factor for late-onset ADComplex; 1 copy = 3x risk, 2 copies = 12x risk
APP (amyloid precursor protein)Causal for early-onset familial ADAutosomal dominant
PSEN1 (presenilin 1)Most common cause of early-onset familial ADAutosomal dominant
PSEN2 (presenilin 2)Rare cause of early-onset familial ADAutosomal dominant

8. Summary: Key Numbers for Exam

Fact · Number
Schizophrenia heritability ~80%
Schizophrenia MZ concordance ~48%
Schizophrenia DZ concordance ~17%
First-degree relative risk (schizophrenia) ~10% (10x)
Child of two schizophrenic parents ~46%
PGC 2014 GWAS: loci identified 108
GWAS significance threshold p < 5 x 10^-8
LOD score for significant linkage >= 3.0
22q11.2 deletion risk for psychosis 25-30% (25x OR)
Bipolar heritability ~85%
ADHD heritability ~76%
ASD heritability ~80-90%
APOE e4 homozygous risk for AD ~12x
Heritability formula (twin) h2 = 2(rMZ - rDZ)

9. Cross-References


Chapter 02

Model Answers

Exam: PG exams MD Psychiatry, Sep 2026


Q1. "Describe the genetics of schizophrenia." (10 marks)

Exam Strategy

Extremely high-yield, repeated multiple times across years. Structure under clear headings: heritability evidence, family/twin/adoption data, molecular genetics (candidate genes, GWAS, CNVs), then conclude with neurodevelopmental model. Mark allocation: Introduction (1) + Family/Twin/Adoption (3) + Molecular genetics (4) + Integration/Model (2).

Answer:

Introduction (1 mark)

Schizophrenia is a complex, polygenic disorder with estimated heritability of approximately 80%. It does not follow Mendelian inheritance but results from the cumulative effect of multiple genetic variants interacting with environmental factors.

Evidence from Genetic Epidemiology (3 marks)

Family studies:

Twin studies:

Adoption studies:

Molecular Genetics (4 marks)

Candidate genes (historical):

GWAS findings:

Copy number variants (CNVs):

Polygenic risk scores:

Integrative Model (2 marks)

The current understanding supports a polygenic, multifactorial model:


Q1 Extended: 20-Mark Long Essay Version

Introduction (2 marks) -- As above, expanded with: definition, lifetime prevalence 0.7-1%, classification as a complex genetic disorder, contrast with Mendelian disorders.

Genetic Epidemiology (5 marks) -- As above, expanded with:

Molecular Genetics (7 marks) -- As above, expanded with:

Neurodevelopmental and Integrative Models (4 marks) -- Expanded:

Future Directions and Limitations (2 marks)


Q2. "The biological causes of schizophrenia. Genetics of schizophrenia." [5+5 marks]

Exam Strategy

Two distinct sections, do NOT mix them. Part A: broader biological causes (neurochemical, structural, neurodevelopmental, immune). Part B: genetics specifically (compress the Q1 answer into 5 marks).

Answer:

Part A: Biological Causes of Schizophrenia (5 marks)

Neurochemical hypotheses:

Structural brain abnormalities:

Neurodevelopmental factors:

Neuroimmune/neuroinflammation:

Part B: Genetics of Schizophrenia (5 marks)

Cross-reference: D1 sections 3 and 4; NB-04 (neurobiology)


Q3. "Biopsychosocial model of schizophrenia. Recent advances in genetics." [5+5 marks]

Exam Strategy

Part A: cover bio, psycho, social factors systematically. Part B: focus on GWAS, C4, CNVs, PRS, epigenetics, the "recent" angle.

Answer:

Part A: Biopsychosocial Model (5 marks)

Biological factors:

Psychological factors:

Social factors:

Integration: The stress-vulnerability model (Zubin and Spring, 1977) proposes that the disorder emerges when environmental stressors exceed the individual's threshold, which is determined by genetic and neurodevelopmental vulnerability.

Part B: Recent Advances in Genetics (5 marks)

GWAS:

C4 complement gene (Sekar et al., 2016):

Copy number variants:

Polygenic risk scores:

Epigenetics:


Q4. "Genetics of Schizophrenia." (Short note, 10 marks)

Exam Strategy

Identical content to Q1 but written as a short note (slightly more condensed, same structure). See Q1 answer above, use the 10-mark version directly.


Q5. "What is Genetic mutation and how does it occur?" (10 marks)

Exam Strategy

Definition + classification + mechanisms + examples. Mark allocation: Definition (1) + Types (4) + Mechanisms (3) + Clinical relevance (2).

Answer:

Definition (1 mark)

A genetic mutation is a permanent change in the nucleotide sequence of DNA. Mutations may be neutral, beneficial, or pathogenic depending on their location and functional impact.

Types of Mutations (4 marks)

Point mutations (single nucleotide changes):

Insertions and deletions (indels):

Trinucleotide repeat expansions:

Chromosomal mutations:

Mechanisms of Mutation (3 marks)

Spontaneous:

Induced:

De novo mutations:

Clinical Relevance in Psychiatry (2 marks)


Q6. "What is pharmacogenetics? Describe its research and implications in treatment." [2+4+4 marks]

Exam Strategy

Long essay candidate, can be expanded to 20 marks. Clear three-part structure matching mark allocation.

Answer:

What is Pharmacogenetics? (2 marks)

Pharmacogenetics is the study of how genetic variation in individual genes influences drug response, including drug efficacy, dosing requirements, and adverse drug reactions. The broader term pharmacogenomics encompasses the influence of the entire genome on drug response. The goal is to move from empirical "trial and error" prescribing to personalized, genotype-guided treatment.

Research in Pharmacogenetics (4 marks)

CYP450 enzyme polymorphisms:

HLA pharmacogenetics:

Pharmacodynamic targets:

Key research approaches:

Implications in Treatment (4 marks)

Clinical applications:

Metabolizer phenotype-based dosing:

Current limitations:

Future directions:

Cross-reference: D1 section 6; D4 comparison tables 5 and 6


Q6 Extended: 20-Mark Long Essay Version

Expand each section:


Q7. "What is pharmacogenetics? Role in medical disorders with examples." (10 marks)

Exam Strategy

Broader scope than Q6, include non-psychiatric examples. Mark allocation: Definition (2) + Role in medical disorders (4) + Psychiatric examples (4).

Answer:

Definition (2 marks)

Pharmacogenetics is the study of how inherited genetic variation affects individual responses to drugs. It encompasses drug efficacy, required dosing, and susceptibility to adverse drug reactions. It is a key component of personalized/precision medicine.

Role in Medical Disorders (4 marks)

Oncology:

Cardiology:

Infectious disease:

Rheumatology:

Psychiatric Examples (4 marks)


Q8. "What are pharmacogenomics & pharmacogenetics? Relevance in Psychiatry." [4+6 marks]

Exam Strategy

Clear distinction between the two terms in Part A. Part B: focus exclusively on psychiatric applications.

Answer:

Pharmacogenetics and Pharmacogenomics: Definitions and Distinction (4 marks)

Pharmacogenetics:

Pharmacogenomics:

Key distinction: Pharmacogenetics = single gene drug response. Pharmacogenomics = whole genome drug response. In practice, the terms are often used interchangeably.

Both fall under the umbrella of personalized/precision medicine: selecting the right drug at the right dose for the right patient based on their genetic profile.

Relevance in Psychiatry (6 marks)

Why particularly relevant in psychiatry:

CYP450 polymorphisms:

HLA testing:

Clinical decision support (CPIC guidelines):

Evidence from clinical trials:

Limitations and future:


Q9. "What is pharmacogenetics? Current concept and future use in psychiatry." (10 marks)

Exam Strategy

Overlaps with Q6 and Q8. Emphasize "current concept" = what we know now + "future use" = where the field is heading. Mark allocation: Definition (2) + Current concepts (4) + Future use (4).

Answer:

Definition (2 marks) -- As in Q6/Q8.

Current Concepts (4 marks)

Future Use in Psychiatry (4 marks)


Q10. "What is EBM? What is personalized medicine? Discuss pharmacogenetics." [2+3+5 marks]

Exam Strategy

Three distinct sections with clear mark allocation. EBM: keep concise (definition + levels of evidence). Personalized medicine: bridge concept connecting EBM to pharmacogenetics.

Answer:

Evidence-Based Medicine (2 marks)

Evidence-based medicine (EBM) is the conscientious, explicit, and judicious use of current best evidence in making decisions about the care of individual patients (Sackett, 1996). It integrates three components:

  1. Best available research evidence (systematic reviews, RCTs)
  2. Clinical expertise
  3. Patient values and preferences

Hierarchy of evidence: Systematic reviews/meta-analyses > RCTs > cohort studies > case-control > case series > expert opinion.

EBM provides population-level treatment guidelines. Its limitation is that it treats patients as homogeneous groups, not accounting for individual biological variation.

Personalized Medicine (3 marks)

Personalized (precision) medicine tailors medical treatment to individual characteristics -- genetic, environmental, and lifestyle -- of each patient. It moves beyond "one size fits all" prescribing.

Key components:

In psychiatry, personalized medicine addresses the problem that:

Personalized medicine is the practical application of EBM at the individual level -- using the best evidence to make the best decision for this specific patient.

Pharmacogenetics (5 marks)

Definition: Study of how genetic variation affects drug response (efficacy, dosing, adverse effects).

Key applications in psychiatry:

Metabolizer phenotypes: PM, IM, NM, UM -- each with distinct clinical implications.

CPIC guidelines: Evidence-based, gene-drug specific dosing recommendations.

Challenges: Cost, clinician education, limited pharmacodynamic evidence, ethical considerations.

Future: Pre-emptive testing, EHR integration, AI-guided prescribing, polygenic response scores.

Cross-reference: D1 section 6; D4 tables 5 and 6


Q11. "What is genetic epidemiology? Describe three types of genetic studies." (10 marks)

Exam Strategy

Long essay candidate. Definition + three study types in detail. Mark allocation: Definition (2) + Three study types (2.5 each = 7.5) + Summary (0.5). Choose: family, twin, and adoption studies (most commonly expected); OR include one molecular method.

Answer:

Genetic Epidemiology: Definition (2 marks)

Genetic epidemiology is the study of the role of genetic factors and their interaction with environmental factors in the occurrence of disease in populations. It uses epidemiological methods to determine:

  1. Whether a disease has a genetic component (familial aggregation)
  2. The relative contribution of genetic vs environmental factors (heritability)
  3. The mode of inheritance
  4. The location and identity of specific genes involved

It bridges classical epidemiology (population-level disease patterns) and molecular genetics (specific genetic variants).

Three Types of Genetic Studies (8 marks)

1. Family Studies (2.5 marks)

Design: Compare the prevalence of a disorder in relatives of affected individuals (probands) with the prevalence in the general population or in relatives of unaffected controls.

Key measures:

Example in schizophrenia:

Strengths: Simple, demonstrates familial aggregation

Limitation: Cannot distinguish genetic from shared environmental effects (families share both genes and environment)

2. Twin Studies (2.5 marks)

Design: Compare concordance rates between MZ twins (100% shared DNA) and DZ twins (~50% shared DNA). If genetic factors contribute, MZ concordance should exceed DZ concordance.

Key measures:

Example:

Strengths: Separates genetic from shared environmental effects (both twin types share family environment)

Limitations:

3. Adoption Studies (2.5 marks)

Design: Study individuals separated from biological parents early in life. Compares rates of disorder in:

Key studies in schizophrenia:

Strengths: Most powerful naturalistic design for separating genetic and environmental effects

Limitations:

Summary (0.5 marks)

Family, twin, and adoption studies together form the foundation of genetic epidemiology in psychiatry. They establish that a disorder has a genetic component and estimate its magnitude (heritability), setting the stage for molecular studies (linkage, association, GWAS) to identify specific genes.


Q11 Extended: 20-Mark Long Essay Version


Q12. "Genetic epidemiological studies in Psychiatry." (10 marks)

Exam Strategy

Broader than Q11, cover all study types relevant to psychiatric genetics. Mark allocation: Introduction (1) + Classical designs (4) + Molecular designs (4) + Conclusion (1).

Answer:

Introduction (1 mark)

Genetic epidemiology in psychiatry employs a hierarchy of study designs to determine the genetic architecture of mental disorders. These range from classical designs that establish heritability to molecular approaches that identify specific genetic variants.

Classical Genetic Epidemiological Designs (4 marks)

Family studies: Establish familial aggregation. Example: Schizophrenia risk 10x in first-degree relatives. Limitation: Cannot separate genes from environment.

Twin studies: Compare MZ vs DZ concordance to estimate heritability. Example: Schizophrenia heritability ~80%. Key assumption: Equal environments.

Adoption studies: Separate genetic from environmental transmission. Heston (1966) and Kety (1968) studies confirmed genetic basis of schizophrenia. Most powerful naturalistic design.

Molecular Genetic Epidemiological Designs (4 marks)

Linkage analysis:

Association studies:

GWAS:

CNV analysis:

Sequencing (WES/WGS):

Conclusion (1 mark)

Modern psychiatric genetics integrates classical designs (establishing heritability) with molecular approaches (identifying specific variants) and is increasingly incorporating epigenetic and gene-environment interaction analyses. This multi-layered approach is essential given the polygenic, multifactorial nature of psychiatric disorders.


Q13. "What is gene mapping? How is it different from linkage and association studies?" [3+7 marks]

Exam Strategy

Part A: define gene mapping and its purpose. Part B: compare linkage and association studies in detail.

Answer:

Gene Mapping (3 marks)

Gene mapping is the process of determining the chromosomal location of a gene and the distance between genes. There are two types:

Genetic mapping:

Physical mapping:

Purpose in psychiatry: Identify specific genes contributing to complex disorders like schizophrenia, bipolar disorder, and depression.

Linkage vs Association Studies (7 marks)

Linkage analysis:

Association studies:

FeatureLinkageAssociation
DesignFamily-basedPopulation or family
SampleExtended pedigreesCases vs controls (or trios)
ResolutionLow (10-20 Mb)High (~1 kb)
Effect size detectedLargeSmall to large
Best forMendelian traitsComplex traits
Statistical testLOD scoreChi-square, regression
SignificanceLOD >= 3.0p < 5 x 10^-8 (GWAS)
Key limitationLow power for polygenic traitsPopulation stratification

Key conceptual point: Linkage detects co-segregation within families (are these loci transmitted together?). Association detects co-occurrence in populations (is this allele more common in cases?). They answer different questions and are complementary.


Chapter 03

Mnemonics & Memory Tricks

Exam: PG exams MD Psychiatry, Sep 2026


Mnemonic 1: Candidate Genes of Schizophrenia

Mnemonic
DISC-o NRG Drinks COMT RGS

EXAM PEARL: Picture a "DISCO" club where NRG drinks are served, COMT is the bouncer, and RGS4 is the DJ.

LetterGeneFull Name
DISCDISC1Disrupted in Schizophrenia 1
NRGNRG1Neuregulin 1
D (Drinks)DTNBP1Dysbindin
COMTCOMTCatechol-O-Methyltransferase
RGSRGS4Regulator of G-protein Signaling 4

Mnemonic 2: CYP1A2 -- Substrates

Mnemonic
COD FM

EXAM PEARL: Smoking INDUCES CYP1A2. Stop smoking = clozapine toxicity.

Letter · Substrate
C Clozapine
O Olanzapine
D Duloxetine
F Fluvoxamine (also inhibitor)
M Melatonin

Mnemonic 3: CYP2D6 -- Substrates

Mnemonic
FRIEND-HAV

EXAM PEARL: CYP2D6 is NOT significantly inducible. Fluoxetine and paroxetine are potent inhibitors.

Letter · Substrate
F Fluoxetine (also inhibitor)
R Risperidone
I Imipramine / TCAs
E (codEine)
N Nortriptyline
D Desipramine
H Haloperidol
A Aripiprazole / Atomoxetine
V Venlafaxine

Mnemonic 4: CYP2D6 Inhibitors

Mnemonic
FPB-Q

EXAM PEARL: "Fluoxetine and Paroxetine Block Quickly", these two SSRIs are the strongest CYP2D6 inhibitors in psychiatry.

Fluoxetine, Paroxetine, Bupropion, Quinidine


Mnemonic 5: CYP3A4 -- "The Kitchen Sink Enzyme"

Mnemonic
QLB-MZ / CAPS / KEG

EXAM PEARL: Substrates (psychiatry): Quetiapine, Lurasidone, Buspirone, Midazolam, Ziprasidone EXAM PEARL: Inducers: Carbamazepine, (Ph)Aenytoin, RifamPin, St. John's Wort EXAM PEARL: Inhibitors: Ketoconazole, Erythromycin, Grapefruit juice


Mnemonic 6: Metabolizer Phenotypes

Mnemonic
PINE

EXAM PEARL: PINE tree, from slowest growth (Poor) to fastest (Extra/Ultrarapid).

PhenotypeCopiesClinical Effect
Poor0 functionalDrug accumulates -- toxicity risk
Intermediate1 reducedMildly elevated levels
Normal (Extensive)2 functionalStandard dosing works
Extra (Ultrarapid)>2 copiesDrug cleared fast -- treatment failure

Mnemonic 7: Heritability Across Psychiatric Disorders

Mnemonic
ABS are strong

EXAM PEARL: ASD, Bipolar, Schizophrenia all have heritability above 75%. Depression is the outlier at ~37%.

DisorderHeritabilityMnemonic Number
Autism (ASD)~80-90%"A is the highest"
Bipolar~85%Almost as high as ASD
Schizophrenia~80%"S is 8-ty"
ADHD~76%"Seven-six"
Depression (MDD)~37%"The low one"

Mnemonic 8: Key GWAS Findings in Schizophrenia

Mnemonic
108-C4-D2-Glut-Cal

EXAM PEARL: "108 soldiers of C4 attacked D2 with Glut and Cal weapons"


Mnemonic 9: Genetic Study Design Hierarchy

Mnemonic
FAT-LAG-WES

EXAM PEARL: "FAT people LAG in WES-tern movies", Classical studies (FAT) come before molecular studies (LAG-WES).

StepStudy TypePurpose
FFamily studiesDoes it run in families?
AAdoption studiesIs it genes or environment?
TTwin studiesHow heritable is it?
LLinkage analysisWhich chromosome region?
AAssociation studiesWhich specific variant?
GGWASGenome-wide unbiased scan
WWhole exome sequencingRare coding variants?
EWhole genome sequencingEverything including non-coding
SSystems biologyHow do variants interact?

Mnemonic 10: Types of Mutations

Mnemonic
PSF-TCI
Letter · Mutation Type
P Point (missense, nonsense, silent)
S Substitution (same as point)
F Frameshift (insertion/deletion)
T Trinucleotide repeat expansion
C Chromosomal (aneuploidy, deletion, duplication)
I Inversion / translocation

Mnemonic 11: CNVs in Schizophrenia

Mnemonic
22-1-15-N-16-3

EXAM PEARL: Think of it as a phone number: 22-1-15 N-16-3. "22 is king (highest yield), 3 is the sleeper (highest penetrance)."

CNVRiskKey Feature
22q11.2 del25xDiGeorge/VCFS; cardiac + psychosis
1q21.1 del3xAlso ASD
15q13.3 del2xCHRNA7 (nicotinic receptor)
NRXN1 del2xNeurexin; synaptic adhesion
16p11.2 dup3xASD (deletion) vs SCZ (duplication)
3q29 del40xRare but highest penetrance

Mnemonic 12: Gene-Environment Interactions (GxE)

Mnemonic
MAOA-5H-FK-CO-AK

EXAM PEARL: "My Aunt's 5 Friends Keep COming to AKbar's", each friend represents a GxE interaction.

CodeGene x EnvironmentOutcome
MAOAMAOA-L x childhood maltreatmentAntisocial behavior (Caspi 2002)
5H5-HTTLPR short x life stressDepression (Caspi 2003, debated)
FKFKBP5 x childhood traumaPTSD risk
COCOMT Val/Val x cannabisPsychosis
AKAKT1 x cannabis7x schizophrenia risk

Mnemonic 13: Trinucleotide Repeat Disorders

Mnemonic
Hunt My Fragile Friedrich

EXAM PEARL: Key concept: Anticipation, repeat number increases across generations, causing earlier onset and greater severity.

DisorderRepeatGene/LocusThreshold
HuntingtonCAGHuntingtin (chr 4)>36 repeats
Myotonic dystrophyCTGDMPK (chr 19)>50 repeats
Fragile XCGGFMR1 (X chromosome)>200 (full mutation)
Friedrich ataxiaGAAFrataxin (chr 9)>100 repeats

Mnemonic 14: HLA Pharmacogenetics

Mnemonic
1502-CBZ-Asian-SJS

EXAM PEARL: "15:02 is the time the Asian patient was admitted for SJS from CBZ"


Mnemonic 15: Schizophrenia Risk by Relatedness

Mnemonic
1-3-10-17-48

EXAM PEARL: The numbers roughly triple/double as genetic closeness increases. Memorize this sequence cold.

Relationship · Risk (%)
General population 1
Second-degree relative 3
First-degree relative 10
DZ twin 17
MZ twin 48

Chapter 04

High-Yield Comparisons

Exam: PG exams MD Psychiatry, Sep 2026


Table 1: Linkage vs Association Studies

FeatureLinkage StudiesAssociation Studies
DesignFamily-based; tracks co-segregation in pedigreesPopulation-based (case-control) or family-based (TDT)
ResolutionLow (~10-20 Mb); identifies broad chromosomal regionsHigh (~1 kb); can pinpoint specific SNPs
Effect sizeDetects large effects (Mendelian)Detects small to moderate effects (complex traits)
Statistical testLOD score (>=3.0 significant)Chi-square / regression; p < 5x10^-8 for GWAS
Best forSingle-gene disordersPolygenic, multifactorial disorders
Exam Pearl

Linkage asks "are these loci inherited together within families?" Association asks "is this allele more common in affected individuals in a population?"


Table 2: GWAS vs Candidate Gene Studies

FeatureGWASCandidate Gene Studies
HypothesisHypothesis-free (genome-wide scan)Hypothesis-driven (tests specific genes)
Coverage~1 million+ SNPs across entire genomeSelected variants in pre-chosen genes
Sample sizeVery large (tens of thousands)Smaller (hundreds to low thousands)
Significance thresholdp < 5x10^-8 (Bonferroni correction)p < 0.05 (often uncorrected)
ReplicationGenerally replicablePoor replication record
Exam Pearl

GWAS has largely superseded candidate gene studies. Most candidate gene findings (DISC1, NRG1, DTNBP1) have NOT been confirmed by GWAS. However, GWAS validated some biological pathways that candidate gene studies suggested (e.g., dopamine via DRD2, glutamate via GRIN2A).


Table 3: Twin Studies vs Adoption Studies

FeatureTwin StudiesAdoption Studies
PurposeEstimate heritabilitySeparate genetic from environmental factors
DesignCompare MZ vs DZ concordanceCompare biological vs adoptive relatives
Key formulah2 = 2(rMZ - rDZ)No specific formula; rates compared
Key assumptionEqual environments (MZ = DZ shared environment)Random placement (no selective matching)
StrengthQuantifies heritability preciselyCleanest separation of genes vs environment
Exam Pearl

Twin studies quantify HOW MUCH is genetic. Adoption studies confirm THAT it is genetic (not shared family environment). Together they provide the strongest evidence for genetic contribution.


Table 4: Heritability Across Major Psychiatric Disorders

DisorderHeritabilityMZ ConcordanceKey Genetic Findings
ASD80-90%~70-90%De novo mutations, Fragile X, hundreds of genes
Bipolar disorder~85%~40-70%CACNA1C, ANK3; ~60% genetic overlap with schizophrenia
Schizophrenia~80%~48%108 GWAS loci, C4, 22q11.2 deletion
ADHD~76%~80%DRD4, DAT1; 12 GWAS loci
MDD~37%~40%Lower heritability; more environmental contribution
Exam Pearl

ASD, bipolar, and schizophrenia cluster together with heritability >75%. Depression is notably lower, reflecting greater environmental influence.


Table 5: CYP450 Enzymes in Psychiatry

FeatureCYP1A2CYP2D6CYP2C19CYP3A4
Key substratesClozapine, olanzapine, duloxetineFluoxetine, paroxetine, TCAs, risperidone, aripiprazole, haloperidolCitalopram, escitalopram, sertraline, diazepamQuetiapine, lurasidone, buspirone, midazolam
Key inhibitorsFluvoxamine, ciprofloxacinFluoxetine, paroxetine, bupropionFluvoxamine, fluoxetineKetoconazole, erythromycin, grapefruit juice
Key inducersSmoking (PAHs), carbamazepineNot significantly inducibleRifampinCarbamazepine, phenytoin, St. John's Wort
High-yield scenarioSmoking cessation raises clozapine levels -- toxicity riskPM + TCA = cardiotoxicity; UM + codeine = respiratory depressionPM + citalopram = QTc prolongation (FDA 20mg limit)Carbamazepine induces own metabolism (autoinduction)

Table 6: Metabolizer Phenotypes -- Clinical Implications

FeaturePoor Metabolizer (PM)Normal Metabolizer (NM)Ultrarapid Metabolizer (UM)
Enzyme activityNone or minimal (0 functional copies)Normal (2 functional copies)Increased (gene duplication)
Drug levelsElevated (accumulation)Therapeutic at standard doseSubtherapeutic (rapid clearance)
Clinical effectHigher ADR risk at standard doseExpected responseTreatment failure at standard dose
Dose adjustmentReduce dose by 25-50% or use alternativeStandard dosingIncrease dose or use alternative
CYP2D6 exampleRisperidone accumulates, EPS riskNormal response to risperidoneRisperidone cleared too fast, inadequate response
Clinical Anchor

Prodrug caveat, for prodrugs (e.g., codeine converted to morphine by CYP2D6), the pattern reverses: PM cannot activate prodrug (no effect); UM produces excessive active metabolite (respiratory depression, fatal in neonates via breast milk).


Table 7: Copy Number Variants in Schizophrenia

CNVLocusTypeOR / RiskOther Associations
22q11.222q11Deletion25xDiGeorge/VCFS, cardiac defects, hypocalcemia
3q293q29Deletion~40xRare; highest penetrance
1q21.11q21Deletion~3xASD, intellectual disability
15q13.315q13Deletion~2xEpilepsy; contains CHRNA7
NRXN12p16Deletion~2xASD; neurexin (synaptic adhesion)
Exam Pearl

CNVs are individually rare but have large effect sizes (OR 2-40x) compared to common SNPs (OR 1.05-1.2). The 22q11.2 deletion is the single strongest known genetic risk factor for schizophrenia (after MZ twin status). Most CNVs are pleiotropic, they confer risk for multiple neurodevelopmental conditions (schizophrenia, ASD, ID, epilepsy). De novo CNVs (not inherited) are enriched in sporadic schizophrenia cases.


Table 8: Epigenetics vs Genetics

FeatureGeneticsEpigenetics
DefinitionStudy of DNA sequence and its inheritanceStudy of heritable changes in gene expression WITHOUT DNA sequence change
MechanismMutations, polymorphisms, CNVsDNA methylation, histone modification, non-coding RNA
ReversibilityPermanent (germline mutations)Potentially reversible
Environmental sensitivityDNA sequence generally stableHighly responsive to environment (stress, diet, toxins, drugs)
InheritanceMendelian or complexTransgenerational (can be transmitted but often reset)
Example in schizophreniaGWAS: 108 risk loci; CNV: 22q11.2RELN promoter hypermethylation; GAD67 promoter hypermethylation
Clinical Anchor

Epigenetic changes may explain: (1) how environmental risk factors (cannabis, prenatal infection, childhood trauma) alter gene expression without changing DNA; (2) why MZ twin concordance is ~48% not 100% (epigenetic divergence); (3) missing heritability (epigenetic variation not captured by GWAS); (4) potential therapeutic targets (epigenetic drugs like HDAC inhibitors are being explored).


Chapter 05

PYQ Frequency Analysis


Executive Summary

Exam Pearl

Genetics is a moderately tested but high-value topic. When it appears, it usually carries the full 10 marks and requires structured knowledge of study designs + specific findings. Pharmacogenetics is an emerging hot topic that's appeared 5 times and is increasingly combined with EBM/personalized medicine questions.


Topic-Level Frequency

TopicExam MentionsAvg per ExamVerdict
Genetics of schizophrenia (specific)3~0.11Every 8-10 exams
Pharmacogenetics/Pharmacogenomics5~0.18Every 5-6 exams (rising)
Genetic epidemiology / study designs3~0.11Every 8-10 exams
Gene mapping / linkage / association1~0.04Rare
Combined cluster~12~0.43~1 question every 2-3 exams

Key PYQs Identified

Genetics of Schizophrenia

  1. "The biological causes of schizophrenia. Genetics of schizophrenia." [10, split 5+5]
  2. "Biopsychosocial model of schizophrenia. Recent advances in genetics in aetiology." [10, split 5+5]
  3. "Describe genetics of schizophrenia." [10] (Notion QB, multiple entries)
  4. "Genetics of Schizophrenia." [10] (short note format)
  5. "What is Genetic mutation and how does it occur?" [10]

Pharmacogenetics

  1. "What is pharmacogenetics? Describe its research and implications in treatment." [10, split 2+4+4]
  2. "What is pharmacogenetics? Role in medical disorders with examples." [10]
  3. "What are pharmacogenomics & pharmacogenetics? Relevance in Psychiatry." [10, split 4+6]
  4. "What is pharmacogenetics? Current concept and future use in psychiatry." [10]
  5. "What is EBM? What is personalized medicine? Discuss pharmacogenetics." [10, split 2+3+5]

Genetic Study Designs

  1. "What is genetic epidemiology? Describe three types of genetic studies." [10]
  2. "Genetic epidemiological studies in Psychiatry." [10]
  3. "What is gene mapping? How is it different from linkage analysis and association studies?" [10, split 3+7]

Long Essay Candidates

RankTopicProbability
1"Describe the genetics of schizophrenia, twin studies, adoption studies, candidate genes, GWAS findings, copy number variants."Medium-High
2"What is pharmacogenetics? Discuss its implications and future in psychiatric treatment."Medium-High (rising trend)
3"Describe genetic epidemiological study designs in psychiatry, family, twin, adoption, linkage, association, GWAS."Medium

Exam Strategy

Exam Strategy

Must-Prepare topics listed below, these cover ~90% of likely questions on this cluster.

Must-Prepare

  1. Genetics of schizophrenia, heritability (~80%), twin concordance (MZ 48%, DZ 17%), adoption studies (Heston, Kety), candidate genes (DISC1, NRG1, DTNBP1, COMT), GWAS findings (108 loci, C4 complement gene), copy number variants (22q11 deletion), polygenic risk scores
  2. Pharmacogenetics, CYP450 enzymes (2D6, 3A4, 1A2, 2C19), poor/intermediate/extensive/ultrarapid metabolizers, clinical examples (CYP2D6 and codeine/SSRIs, HLA-B*5701 and carbamazepine, CYP1A2 and clozapine/smoking), pharmacogenomic testing in clinical practice
  3. Genetic study designs, family studies, twin studies (MZ vs DZ, heritability formula), adoption studies, linkage analysis (LOD scores), association studies (case-control), GWAS (Manhattan plots, genome-wide significance), epigenetics

Nice-to-Know

  1. Gene-environment interaction (MAOA gene + childhood maltreatment antisocial behaviour; 5-HTTLPR + stress depression, though Caspi findings debated)
  2. Epigenetics (DNA methylation, histone modification, non-coding RNA)
  3. Endophenotypes (conceptual)

Analysis based on PG exams Dec 2011, Jun 2025 + PG exams 2013-2022.

Chapter 06

Quick Review

Exam: PG exams MD Psychiatry, Sep 2026


RECALL (Q1-Q10)

Q1. What is the estimated heritability of schizophrenia?

Answer: Approximately 80%, derived from twin and adoption studies.


Q2. What are the MZ and DZ twin concordance rates for schizophrenia?

Answer: MZ: ~48%. DZ: ~17%. Using Falconer's formula: h2 = 2(0.48 - 0.17) = 0.62 (crude estimate; model-based estimates give ~0.80).


Q3. Name five candidate genes historically associated with schizophrenia.

Answer: DISC1 (disrupted in schizophrenia 1), NRG1 (neuregulin 1), DTNBP1 (dysbindin), COMT (catechol-O-methyltransferase), RGS4 (regulator of G-protein signaling 4). Note: Most have NOT been confirmed by GWAS.


Q4. What was the key finding of the PGC Schizophrenia Working Group (2014)?

Answer: Identified 108 genome-wide significant loci in a sample of 36,989 cases and 113,075 controls. Key loci included DRD2, MHC/C4, glutamate pathway genes, and calcium channel genes.


Q5. What is the genome-wide significance threshold for GWAS and why?

Answer: p < 5 x 10^-8. This is a Bonferroni correction for approximately 1 million independent SNP tests (0.05 / 1,000,000 = 5 x 10^-8).


Q6. What LOD score indicates significant linkage?

Answer: LOD >= 3.0 (indicating 1000:1 odds in favour of linkage). LOD <= -2.0 excludes linkage.


Q7. What is the heritability formula used in twin studies?

Answer: Falconer's formula: h2 = 2(rMZ - rDZ), where r = concordance rate (or correlation) for MZ and DZ twins respectively.


Q8. Name the four CYP450 metabolizer phenotypes.

Answer: Poor metabolizer (PM), intermediate metabolizer (IM), normal/extensive metabolizer (NM), ultrarapid metabolizer (UM).


Q9. What HLA allele must be tested before starting carbamazepine in Asian patients, and what reaction does it predict?

Answer: HLA-B*1502. Predicts Stevens-Johnson Syndrome (SJS) and Toxic Epidermal Necrolysis (TEN). FDA mandates testing before carbamazepine in patients of Asian ancestry.


Q10. What is the APOE e4 allele's relationship to Alzheimer disease?

Answer: APOE e4 is the strongest genetic risk factor for late-onset Alzheimer disease. One copy confers ~3x risk; two copies confer ~12x risk. It is a risk factor, not deterministic.


APPLICATION (Q11-Q22)

Q11. A patient of South Asian origin is started on carbamazepine and develops SJS. What genetic test should have been done before prescribing?

Answer: HLA-B*1502 genotyping. This allele is prevalent in South Asian, Southeast Asian, and East Asian populations and is strongly associated with carbamazepine-induced SJS/TEN. FDA guidelines recommend testing before prescribing carbamazepine to patients with Asian ancestry.


Q12. A patient stable on clozapine 400mg/day is admitted to a smoke-free psychiatric unit. After 5 days, they become excessively sedated with drooling. What happened?

Answer: Smoking induces CYP1A2, which metabolizes clozapine. When the patient stopped smoking upon hospitalization, CYP1A2 induction was lost, causing clozapine levels to rise and producing toxicity (sedation, sialorrhea). The clozapine dose should have been reduced by 25-50% upon smoking cessation.


Q13. A CYP2D6 poor metabolizer is prescribed nortriptyline at the standard dose. What clinical problem might arise?

Answer: Nortriptyline (a TCA) is metabolized by CYP2D6. A poor metabolizer cannot clear the drug normally, leading to accumulation and risk of cardiotoxicity (QTc prolongation, arrhythmias), excessive sedation, and anticholinergic toxicity. The dose should be reduced by approximately 50%, or an alternative not metabolized by CYP2D6 should be chosen.


Q14. An ultrarapid CYP2D6 metabolizer is prescribed codeine for pain after a dental procedure. She is also breastfeeding her infant. What is the risk?

Answer: CYP2D6 converts codeine to morphine. An ultrarapid metabolizer produces excessive morphine, which is secreted in breast milk. This can cause respiratory depression and death in the infant. Codeine should be avoided in CYP2D6 ultrarapid metabolizers who are breastfeeding.


Q15. A child is diagnosed with 22q11.2 deletion syndrome (VCFS/DiGeorge). The parents ask about the risk of psychiatric illness. What do you counsel?

Answer: 22q11.2 deletion confers a 25-30% lifetime risk of developing schizophrenia-like psychosis (25x the general population risk). It is the strongest known single genetic risk factor for schizophrenia. The child should be monitored for prodromal symptoms during adolescence. Other psychiatric risks include ADHD, anxiety disorders, and mood disorders.


Q16. A patient on fluoxetine 20mg is started on risperidone 2mg. After one week, the patient develops significant EPS. The dose of risperidone seems low for such side effects. What might explain this?

Answer: Fluoxetine is a potent CYP2D6 inhibitor. Risperidone is metabolized by CYP2D6. Fluoxetine inhibits risperidone metabolism, effectively converting the patient into a pharmacokinetic "poor metabolizer." This causes risperidone levels to rise, producing EPS at what would normally be a low dose. Either reduce risperidone dose, discontinue fluoxetine, or switch to an SSRI that does not inhibit CYP2D6 (e.g., sertraline, escitalopram).


Q17. A researcher finds a LOD score of 2.1 for linkage between a chromosomal region and bipolar disorder. What is the interpretation?

Answer: A LOD score of 2.1 is suggestive but does NOT reach the threshold for significant linkage (LOD >= 3.0). It warrants further investigation with larger samples but cannot be considered evidence of linkage. LOD <= -2.0 would exclude linkage.


Q18. A patient with schizophrenia has a family history of schizophrenia in his father and paternal uncle. His GWAS-based polygenic risk score is in the 95th percentile. He asks if his children will definitely develop schizophrenia. How do you counsel?

Answer: A high PRS increases risk but is NOT deterministic. Schizophrenia is polygenic with incomplete penetrance. The baseline risk for a child of one affected parent is ~10%. PRS adds statistical risk at the population level but cannot predict individual outcomes with certainty. Environmental factors (cannabis, stress, obstetric complications) also modulate risk. Genetic counseling should emphasize probabilistic risk, not certainty.


Q19. A researcher wants to study whether a specific SNP is associated with schizophrenia. She has 200 cases and 200 controls. Is this adequate for a GWAS?

Answer: No. GWAS requires very large samples (tens of thousands of cases and controls) to achieve adequate power, because individual SNPs have small effect sizes (OR 1.05-1.2) and the significance threshold is stringent (p < 5 x 10^-8). A sample of 200 cases would only be adequate for a candidate gene study (not GWAS) and even then would be underpowered for small effects.


Q20. A patient with schizophrenia who is a heavy smoker (20 cigarettes/day) on stable clozapine is prescribed ciprofloxacin for a urinary tract infection. What drug interaction should you anticipate?

Answer: Ciprofloxacin is a CYP1A2 inhibitor. While smoking induces CYP1A2, ciprofloxacin inhibits it. The net effect is a rise in clozapine levels, potentially causing toxicity. Monitor clozapine levels and consider dose reduction during the ciprofloxacin course.


Q21. The Caspi et al. (2002) study found that MAOA-L allele carriers who experienced childhood maltreatment had higher rates of antisocial behavior. A colleague argues this means the MAOA gene "causes" violence. How do you respond?

Answer: The MAOA-L allele does not "cause" violence. This is a gene-environment interaction: the gene modulates the effect of an environmental exposure (maltreatment). Without maltreatment, MAOA-L carriers do not show increased antisocial behavior. The gene creates a vulnerability that is only expressed under specific environmental conditions. Additionally, the effect size is modest, and many MAOA-L carriers exposed to maltreatment do NOT become antisocial.


Q22. A 45-year-old patient with bipolar disorder on carbamazepine 600mg BD is also started on ketoconazole for a fungal infection. A week later, he develops ataxia, diplopia, and nausea. What is the likely mechanism?

Answer: Carbamazepine is metabolized by CYP3A4. Ketoconazole is a potent CYP3A4 inhibitor. Inhibition of CYP3A4 by ketoconazole causes carbamazepine levels to rise, producing signs of carbamazepine toxicity (ataxia, diplopia, nausea, nystagmus). Carbamazepine levels should be checked and the dose reduced.


ANALYSIS (Q23-Q30)

Q23. Why does the high heritability of schizophrenia (~80%) not translate to simple Mendelian inheritance?

Answer: Because schizophrenia is polygenic (hundreds of genes contribute small effects), exhibits genetic heterogeneity (different genetic variants can produce the same phenotype), has incomplete penetrance (carrying risk alleles does not guarantee illness), and involves gene-environment interaction. High heritability means genetic factors explain most of the variance in liability, but the architecture involves many common variants of small effect plus rare variants of larger effect, rather than a single gene with a clear inheritance pattern.


Q24. The MZ twin concordance for schizophrenia is ~48%. What does the remaining ~52% discordance tell us?

Answer: The 52% discordance in genetically identical individuals indicates that non-genetic factors contribute significantly. These include: (1) environmental factors (prenatal insults, obstetric complications, cannabis, urbanicity, stress), (2) epigenetic divergence (MZ twins accumulate different methylation patterns over time), (3) stochastic developmental variation (random events in brain development), and (4) gene-environment interactions where the same genotype produces different outcomes depending on environmental exposure.


Q25. Why is the C4/MHC finding from GWAS considered such an important advance in schizophrenia genetics?

Answer: The C4/MHC finding (Sekar et al., 2016) is important because it provides a mechanistic bridge between a GWAS statistical signal and a neurobiological process. C4A overexpression leads to excessive complement-mediated synaptic pruning in adolescence. This single finding connects: (1) the strongest GWAS association to (2) a specific molecular mechanism to (3) the neurodevelopmental model of schizophrenia to (4) the clinical observation of adolescent onset and (5) the neuropathological finding of reduced synaptic density and grey matter. It transformed a statistical association into a biologically interpretable and potentially druggable pathway.


Q26. How do common variants (GWAS) and rare variants (CNVs) each contribute to schizophrenia risk, and why do we need to study both?

Answer: Common variants (identified by GWAS) are individually of small effect (OR 1.05-1.2) but collectively explain a substantial portion of genetic risk through polygenic mechanisms. Rare variants (CNVs, de novo mutations) are individually rare but have large effects (OR 2-40x). Studying both is necessary because: (1) they capture different parts of the genetic architecture, (2) rare variants point to specific genes and biological pathways more directly, (3) common variants help build polygenic risk scores, and (4) together they explain more variance than either alone. The "missing heritability" gap may partly lie in rare variants not captured by GWAS.


Q27. Why has the 5-HTTLPR x stress interaction for depression been controversial, and what lesson does this teach about GxE research?

Answer: Caspi et al. (2003) reported that the short allele of 5-HTTLPR interacted with stressful life events to increase depression risk. However, a large collaborative meta-analysis (Culverhouse et al., 2018) with over 40,000 subjects found no support for this interaction. The controversy teaches several lessons: (1) initial GxE findings may be false positives due to small samples and publication bias, (2) environmental measures and genotype categorizations affect replicability, (3) very large samples are needed to detect genuine GxE effects, and (4) replication in well-powered studies is essential before clinical application.


Q28. A colleague says "if schizophrenia is 80% heritable, then environment only contributes 20%." Is this correct?

Answer: This is a common misunderstanding. Heritability is a population-level statistic that describes the proportion of variance in liability attributable to genetic factors in a specific population at a specific time. It does NOT mean the environment contributes only 20% in any individual case. Also: (1) heritability does not account for gene-environment interaction or gene-environment correlation, which may inflate the genetic estimate, (2) epigenetic effects (environmentally induced) may be captured in the "genetic" portion, (3) heritability can change if environmental variance changes (e.g., in a more stressful environment, the environmental contribution increases), and (4) high heritability does not mean the condition is immutable or that environmental interventions are futile.


Q29. Schizophrenia reduces reproductive fitness, yet it persists at ~1% prevalence globally. How can this be explained genetically?

Answer: Several hypotheses explain this paradox: (1) Balancing selection: Risk alleles may confer advantages in certain contexts (e.g., creativity, divergent thinking, immune function). (2) Polygenic mutation-selection balance: Many variants of small effect are constantly generated by new mutations at a rate that balances selection against them. (3) De novo mutations: A substantial fraction of schizophrenia may arise from new mutations (especially CNVs) each generation, replenishing the pool. (4) Antagonistic pleiotropy: Variants that increase schizophrenia risk may benefit other traits (e.g., CACNA1C variants may have immune or metabolic benefits). (5) Relaxed selection in modern environments: Reduced mortality from other causes allows psychiatric risk alleles to persist.


Q30. What are endophenotypes, why are they important in schizophrenia genetics, and give three examples?

Answer: Endophenotypes (intermediate phenotypes) are heritable, quantifiable traits that lie on the pathway between genes and the clinical phenotype. They are important because: (1) they are closer to gene action than the complex clinical syndrome, making genetic associations easier to detect, (2) they are present in unaffected relatives (indicating genetic mediation), (3) they are more biologically homogeneous than the clinical diagnosis. Three examples in schizophrenia: (1) Smooth pursuit eye movement abnormalities (found in 50-80% of patients and 25-40% of unaffected relatives), (2) P50 auditory sensory gating deficits (reduced suppression of the second auditory stimulus; linked to CHRNA7 gene), (3) Working memory deficits (related to DLPFC dysfunction and COMT Val158Met polymorphism).


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