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NCERT Exemplar · Q10

Q.Which of the following will not result in variations among siblings?

(a) Independent assortment of genes
(b) Crossing over
(c) Linkage
(d) Mutation
Telangana TsbieMCQ· 1mImportance★★★★★
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Linkage, where genes on the same chromosome are inherited together, reduces variation among siblings by preventing new combinations, unlike independent assortment, crossing over, and mutation which actively create genetic diversity.

Genetic variation refers to the differences in DNA sequences among individuals within a species. In the context of siblings, these variations are what make them unique, even though they share the same parents. These differences arise from several fundamental biological processes during the formation of gametes (sperm and egg) and subsequent fertilisation. Understanding these processes helps us appreciate the mechanisms that drive evolution and individual uniqueness.

Let's examine each option to see how it contributes to, or detracts from, variation among siblings:

  • Independent Assortment of Genes: This principle, articulated by Mendel, states that alleles for different genes assort independently of one another during gamete formation. During meiosis I, homologous chromosomes align randomly at the metaphase plate. The orientation of one pair of homologous chromosomes is independent of the orientation of other pairs. This random alignment means that different combinations of maternal and paternal chromosomes will end up in the gametes. For example, if an individual has chromosomes from both parents, a gamete might receive a mix of maternal and paternal chromosomes, leading to a vast number of possible genetic combinations in the offspring. This is a primary source of variation, as it ensures that siblings receive different mixes of their grandparents' genes. The classic 9:3:3:1 phenotypic ratio observed in a dihybrid cross is a direct outcome of independent assortment, demonstrating how new combinations of traits arise.

  • Crossing Over: This is a crucial event that occurs during prophase I of meiosis. It involves the exchange of genetic material between non-sister chromatids of homologous chromosomes. Imagine two homologous chromosomes, one from the mother and one from the father, each carrying different alleles for various genes. During crossing over, segments of these chromosomes literally swap places. This physical exchange creates new combinations of alleles on the chromatids themselves, which were not present on the original parental chromosomes. These "recombinant" chromatids then segregate into gametes. Consequently, crossing over significantly increases genetic diversity by generating novel combinations of alleles on a single chromosome, further ensuring that each sibling receives a unique set of genetic information. …

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