De novo centromere formation on chromosome fragments with an inactive centromere in maize (Zea mays).

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2021-12-01 Epub Date: 2021-08-18 DOI:10.1007/s10577-021-09670-5
Ryan N Douglas, Hua Yang, Bing Zhang, Chen Chen, Fangpu Han, Jianlin Cheng, James A Birchler
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引用次数: 4

Abstract

The B chromosome of maize undergoes nondisjunction at the second pollen mitosis as part of its accumulation mechanism. Previous work identified 9-Bic-1 (9-B inactivated centromere-1), which comprises an epigenetically silenced B chromosome centromere that was translocated to the short arm of chromosome 9(9S). This chromosome is stable in isolation, but when normal B chromosomes are added to the genotype, it will attempt to undergo nondisjunction during the second pollen mitosis and usually fractures the chromosome in 9S. These broken chromosomes allow a test of whether the inactive centromere is reactivated or whether a de novo centromere is formed elsewhere on the chromosome to allow recovery of fragments. Breakpoint determination on the B chromosome and chromosome 9 showed that mini chromosome B1104 has the same breakpoint as 9-Bic-1 in the B centromere region and includes a portion of 9S. CENH3 binding was found on the B centromere region and on 9S, suggesting both centromere reactivation and de novo centromere formation. Another mini chromosome, B496, showed evidence of rearrangement, but it also only showed evidence for a de novo centromere. Other mini chromosome fragments recovered were directly derived from the B chromosome with breakpoints concentrated near the centromeric knob region, which suggests that the B chromosome is broken at a low frequency due to the failure of the sister chromatids to separate at the second pollen mitosis. Our results indicate that both reactivation and de novo centromere formation could occur on fragments derived from the progenitor possessing an inactive centromere.

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玉米(Zea mays)中失活着丝粒染色体片段上的新生着丝粒形成。
玉米B染色体在第二次花粉有丝分裂时发生不分离,这是其积累机制的一部分。先前的研究发现了9- bi -1 (9-B失活着丝粒-1),它包括一个表观遗传沉默的B染色体着丝粒,该着丝粒易位到9号染色体的短臂上(9S)。这条染色体在分离时是稳定的,但当正常的B染色体加入到基因型中时,它会在第二次花粉有丝分裂时试图进行不分离,通常在9S时染色体断裂。这些断裂的染色体可以用来测试失活的着丝粒是否被重新激活,或者是否在染色体的其他地方形成了一个新的着丝粒,以允许碎片的恢复。对B染色体和9号染色体进行断点测定,发现迷你染色体B1104在B着丝粒区具有与9- bic -1相同的断点,并包含部分9S。在B着丝粒区和9S着丝粒区发现了CENH3结合,提示着丝粒的再激活和重新形成着丝粒。另一条迷你染色体B496显示了重排的证据,但它也只显示了新生着丝粒的证据。其他的小染色体片段直接来源于B染色体,断点集中在着丝粒球形区域附近,这表明B染色体断裂的频率较低,是由于姐妹染色单体在第二次花粉有丝分裂时未能分离所致。我们的研究结果表明,重新激活和重新形成着丝粒都可能发生在具有失活着丝粒的祖细胞的片段上。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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