Q.One gene pair hides the effect of another gene pair. This phenomenon is
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Epistasis is an intergenic (non-allelic) gene interaction in which the alleles of one gene at one locus interfere with, suppress, or mask the phenotypic expression of a different gene's alleles at another locus. The gene doing the masking is called epistatic; the gene whose expression is blocked is called hypostatic - when both genes are present together in an individual, the phenotype is determined by the epistatic gene, and the hypostatic gene's own character does not show at all. Epistasis characteristically reshapes the standard 9:3:3:1 dihybrid F2 ratio into one of several other named, diagnostic ratios depending on exactly how the two loci interact: dominant epistasis (12:3:1, fruit colour in summer squash), recessive epistasis (9:3:4, flow …
Gene interactions can mask the expression of another gene at a different locus, a phenomenon distinct from ordinary dominance (which masks an allele at the same locus). …
The masking of one gene's effect by a different (non-allelic) gene pair is epistasis, so the answer is (A).
Epistasis is a type of gene interaction in which one gene (the epistatic gene) suppresses or masks the phenotypic expression of another gene (the hypostatic gene) located at a different locus.
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- CBSE 2023Set ANNUAL1 markMCQQ.The phenotypic ratio of complementary genes :(a) 9 : 7(b) 9 : 3 : 3 : 1(c) 9 : 3 : 4(d) 9 : 6 : 1
›Reveal solutionSolution
Complementary gene interaction gives a modified dihybrid ratio of 9:7 because both dominant alleles are needed together to produce the trait.
Working
In a normal dihybrid cross with independent assortment and no gene interaction, selfing AaBb x AaBb gives the classic 9:3:3:1 ratio across four phenotypic classes. Complementary genes are a case of non-allelic (intergenic) gene interaction where two genes on different loci jointly control a SINGLE trait, and the dominant phenotype appears only when at least one dominant allele of EACH gene is present together (i.e., genotype A_B_).
All the other three classes -- A_bb, aaB_, and aabb -- fail to produce the dominant phenotype because one or both required dominant alleles are missing, and they are phenotypically indistinguishable from one another (all show the same recessive/alternate phenotype). So the classic 9:3:3:1 ratio collapses into just two classes:
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- CBSE 2021Set D1 markMCQQ.One gene pair hides the effect of another gene pair. This phenomenon is(a) Epistasis(b) Dominance(c) Mutation(d) None of these
›Reveal solutionSolution
The masking of one gene's effect by a different (non-allelic) gene pair is epistasis, so the answer is (A).
Epistasis is a type of gene interaction in which one gene (the epistatic gene) suppresses or masks the phenotypic expression of another gene (the hypostatic gene) located at a different locus.
…
- CBSE 2020Set OC_BOTANY1 markMCQQ.The phenotypic ratio in complementary gene interaction is(a) 9 : 3 : 3 : 1(b) 1 : 2 : 1(c) 9 : 7(d) 3 : 1
›Reveal solutionSolution
Complementary gene interaction is a case of gene interaction in which two dominant genes at different loci must both be present to produce one phenotype; any combination lacking either dominant allele gives the alternative phenotype, converting the standard dihybrid 9:3:3:1 ratio into 9:7.
What is complementary gene interaction
Some traits (e.g. flower colour in sweet pea) depend on two genes, each with its own dominant and recessive allele, that act together (are 'complementary' to each other) to produce a single character. Neither dominant allele alone can produce the full/pigmented phenotype — both are required together.
Working out the ratio
Consider two genes, A/a and B/b, assorting independently. In a dihybrid cross AaBb × AaBb, the underlying genotypic classes are the usual 9 A_B_ : 3 A_bb : 3 aaB_ : 1 aabb.
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- CBSE 2020Set OC_BOTANY1 markQ.Define epistasis.
›Reveal solutionSolution
Epistasis is the masking of one gene's phenotypic expression by a different, non-allelic gene, altering the expected Mendelian dihybrid ratio.
Definition and mechanism
In epistasis, two genes located at different loci influence the same character. One gene (epistatic) suppresses or masks the phenotypic expression of the other gene (hypostatic), so the phenotype expressed is that of the epistatic gene, regardless of which allele of the hypostatic gene is present.
Example
In summer squash, fruit colour is controlled by two genes: a dominant allele (W) for white colour is epistatic to a second gene (Y/y) that determines yellow versus green colour — so plants with at least one W allele are white irrespective of their Y/y genotype, and the yellow/green colour is seen only in ww plants.
Effect on ratio
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- CBSE 2020Set ANNUAL1 markMCQQ.Match the following :(1) Dominant epistasis(2) Duplicate genes(3) Recessive epistasis(4) Complementary genes(i) 9 : 7(ii) 12 : 3 : 1(iii) 15 : 1(iv) 9 : 3 : 4(a) (1)-(iv), (2)-(i), (3)-(ii), (4)-(iii)(b) (1)-(ii), (2)-(iii), (3)-(iv), (4)-(i)(c) (1)-(i), (2)-(ii), (3)-(iii), (4)-(iv)(d) (1)-(iii), (2)-(iv), (3)-(ii), (4)-(i)
›Reveal solutionSolution
The correct matching is Dominant epistasis-12:3:1, Duplicate genes-15:1, Recessive epistasis-9:3:4, Complementary genes-9:7.
When two gene pairs interact non-additively to influence a single trait, the classic 9:3:3:1 dihybrid ratio is modified in characteristic, recognisable ways. In dominant epistasis, a dominant allele at one locus masks the expression of alleles at the second locus, merging two of the classes and giving a 12:3:1 ratio. In duplicate genes (duplicate dominant epistasis), either dominant allele alone (at either of two loci) is sufficient to produce the same dominant phenotype, so only a double-recessive genotype shows the alternative phenotype, giving a 15:1 ratio. In recessive epistasis, being homozygous recessive at one locus masks the phenotype normally determined by the second locus regardless of its genotype, producing a 9:3:4 ratio. In complementary gene action, two dominant genes from different loci must both be present together to produce a particular phenotype (such as flower colour in sweet …
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