Q.What are holandric traits?
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🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Sex-linked Inheritance
A sex-linked trait is one whose gene sits on a sex chromosome rather than an autosome. Genes in the differential (non-homologous) region of X — the part of X with no counterpart on Y — are X-linked; genes in the differential region of Y, with no counterpart on X, are Y-linked or holandric. Because these differential-region genes have nothing to pair with on the other sex chromosome, they cannot undergo crossing over during meiosis, unlike genes on the autosomes or on the small pseudoautosomal regions the X and Y do share. …
Holandric traits are Y-linked traits, passed directly from father to son. …
Holandric traits are Y-linked traits, passed directly from father to son.
Step 1. Because only males carry a Y chromosome, holandric traits can never be inherited by females. …
- Assuming holandric traits can appear in females; they cannot, since …
- CBSE 2026Set ANNUAL1 markQ.Name the gene which is inherited directly from father to son.
›Reveal solutionSolution
The Y-chromosome-linked (holandric) genes are inherited directly from father to son, since only males possess the Y chromosome and it is passed from father to all his sons but never to daughters.
Holandric genes, located on the Y chromosome, pass exclusively from father to son.
In humans, males are heterogametic (XY) and females are homogametic (XX). Genes located on the non-homologous (male-specific) region of the Y chromosome — called holandric genes — are transmitted only from father to son, generation after generation, and are never found in females, since daughters never receive a Y chromosome from their father. A classic example of a holandric trait is hypertrichosis (excessive hair growth on the pinna/ear), which shows this …
- CBSE 2023Set ANNUAL1 markMCQQ.Which one of the following is an example of criss-cross inheritance?(a) Haemophilia(b) Thalassaemia(c) Colour blindness(d) Both(a) and (c)
›Reveal solutionSolution
Criss-cross inheritance is the pattern where an X-linked recessive trait passes from an affected father to his daughters (carriers) and then appears in his grandsons — seen in both haemophilia and colour blindness.
Criss-cross inheritance describes the transmission pattern of X-linked recessive genes: a trait in the father is transmitted to his grandsons through his (carrier, unaffected) daughters, rather than directly to his sons. This "criss-cross" pattern arises because:
- A son inherits his X chromosome only from his mother (his Y comes from his father), so he cannot inherit an X-linked trait directly from his father.
- A daughter inherits one X from her father (carrying the recessive allele) and one from her mother; if she is heterozygous she becomes a carrier and may pass the trait on to her own sons. …
- CBSE 2022Set ANNUAL1 markMCQQ.If a colour-blind male marries a normal woman, what percentage of their children are likely to be colour-blind?(a) 0(b) 25(c) 50(d) 100
›Reveal solutionSolution
Colour-blindness is an X-linked recessive trait; a colour-blind father crossed with a homozygous normal mother produces NO colour-blind children in the first generation.
Colour-blindness is caused by a recessive allele (Xc) located on the X chromosome. Let the colour-blind father be XcY and the normal (non-carrier) mother be XX (homozygous dominant, since she is stated to be a 'normal woman' with no indication of being a carrier).
Cross: XcY (father) x XX (mother)
Gametes: father gives Xc or Y; mother gives only X.
Offspring genotypes: XXc (daughters — carriers, phenotypically normal since the dominant X masks Xc) and XY (sons — normal, having received the mother's normal X and father's Y).
…
- CBSE 2017Set ANNUAL1 markMCQQ.Which of the following has normal vision?(a) X^c X^c(b) X^c Y(c) X^C X^c(d) X^c Y^c
›Reveal solutionSolution
Correct answer: (c) X^C X^c
Colour blindness is a recessive X-linked trait, so a heterozygous female (one normal allele, one colour-blind allele) is phenotypically normal — a carrier.
Colour blindness in humans is inherited as an X-linked recessive trait, with the normal-vision allele X^C dominant over the colour-blind allele X^c. A heterozygous female with genotype X^C X^c carries one copy of each allele; since X^C is dominant, she has normal vision phenotypically (though she is a carrier who can pass the X^c allele to her offspring). By contrast, X^c X^c (homozygous recessive female) would be col …
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