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有袋类动物和单孔目动物的基因图谱。I. 啮齿动物 - 有袋类动物(大袋鼠属)细胞杂种的染色体,以及灰袋鼠X染色体上的基因定位。

Gene mapping in marsupials and monotremes. I. The chromosomes of rodent-marsupial (Macropus) cell hybrids, and gene assignments to the X chromosome of the grey kangaroo.

作者信息

Dawson G W, Graves J A

出版信息

Chromosoma. 1984;91(1):20-7. doi: 10.1007/BF00286481.

Abstract

Somatic cell genetic mapping of marsupial and monotreme species will greatly extend the power of comparative gene mapping to detect ancient mammalian gene arrangements. The use of eutherian-marsupial cell hybrids for such mapping is complicated by the frequent retention of deleted and rearranged marsupial chromosomes. We used staining techniques, involving the fluorochromes Hoechst 33258 and chromomycin A3, to facilitate rapid and unequivocal identification of marsupial chromosomes and chromosome segments and to make chromosome assignment and regional localization of marsupial genes possible. Chromosome segregation in rodent-macropod hybrids was consistent with preferential loss of the marsupial complement. The extent of loss was very variable. Some hybrids retained 30% of the marsupial complement; some retained small centric fragments; and some, no cytologically identifiable marsupial material. We examined the chromosomes and gene products of a number of rodent-grey kangaroo Macropus giganteus hybrids, and have assigned the genes Pgk-A (phosphoglycerate kinase-A), Hpt (Hypoxanthine-phosphoribosyl transferase), and Gpd (Glucose-6-phosphate dehydrogenase) to the long arm of the kangaroo X chromosome, and provisionally established the gene order Pgk-A--Hpt--Gpd.

摘要

有袋类动物和单孔目动物的体细胞遗传图谱将极大地扩展比较基因图谱的能力,以检测古老的哺乳动物基因排列。使用真兽类-有袋类细胞杂种进行此类图谱绘制因有袋类染色体频繁保留缺失和重排而变得复杂。我们使用了涉及荧光染料Hoechst 33258和放线菌素A3的染色技术,以促进对有袋类染色体和染色体片段的快速明确鉴定,并使有袋类基因的染色体分配和区域定位成为可能。啮齿动物-大袋鼠杂种中的染色体分离与有袋类染色体组的优先丢失一致。丢失程度差异很大。一些杂种保留了30%的有袋类染色体组;一些保留了小的着丝粒片段;还有一些没有细胞学上可识别的有袋类物质。我们检查了一些啮齿动物-灰袋鼠(Macropus giganteus)杂种的染色体和基因产物,并将基因Pgk-A(磷酸甘油酸激酶-A)、Hpt(次黄嘌呤-磷酸核糖转移酶)和Gpd(葡萄糖-6-磷酸脱氢酶)定位到袋鼠X染色体的长臂上,并初步确定了基因顺序Pgk-A--Hpt--Gpd。

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