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12.18 : Dosage Compensation

In animals, gender is determined by the number and type of sex chromosome. For example, human females have two X chromosomes, and males have one X and one Y chromosome, whereas C.elegans with one X chromosome is a male, and the one with two X chromosomes is a hermaphrodite.

In addition to sexual development, the X chromosome has genes involved in autosomal functions such as brain development and the immune system. Therefore, males and females with distinct numbers of X chromosomes will have different copies of X-linked genes that may create an imbalance. To avoid this, animals have evolved mechanisms to compensate for the differences in X-linked genes between the two sexes.

There are three main mechanisms of dosage compensation. The first mechanism is found in female mammals, which inactivates one of the X chromosomes in females. The second mechanism is observed in male Drosophila, where they show a two-fold increase in the expression of X-linked genes. The third mechanism is documented in C.elegans, where the hermaphrodites decrease the transcription of both the X chromosomes by half.

In mammals, the X-inactivation is regulated by two noncoding, complementary RNAs—XIST and TSIX. The XIST is a noncoding RNA produced by one of the X chromosomes in females. It binds to the X chromosome that produces it and inhibits all other genes from that chromosome. Interestingly, XIST is only made from the inactivated X chromosome and not from the other one. The active copy of the X chromosome produces an antagonistic RNA molecule called TSIX that inhibits XIST activity. Therefore, the inactivated X chromosome produces XIST, and the functional copy of the chromosome produces TSIX.

Tags

Dosage CompensationGender DeterminationSex ChromosomesX ChromosomeY ChromosomeC elegansHermaphroditeX linked GenesImbalanceMechanisms Of Dosage CompensationX inactivationXISTTSIX

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12.18 : Dosage Compensation

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12.1 : 퍼넷 스퀘어

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12.2 : 모노하이브리드 십자가

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12.3 : 다이하이브리드 십자가

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12.4 : 트라이하이브리드 십자가

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12.5 : Law of Independent Assortment(독립 구색의 법칙)

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12.6 : 카이제곱 분석

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12.7 : 가계도 분석

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12.8 : 다중 대립유전자 형질

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12.9 : 불완전한 지배

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12.10 : 치명적 대립유전자

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12.11 : 다인자 형질

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12.12 : 배경과 환경이 표현형에 영향을 미친다

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12.13 : X 및 Y 염색체

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12.14 : Y 염색체는 남성성을 결정합니다.

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