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1.
大熊猫染色体腹复制带研究   总被引:2,自引:2,他引:0  
以培养的大熊猫外周血淋巴细胞为实验材料,在细胞培养终止前4h加入BrdU(终浓度为10μg/ml培养基),对复制的染色体DNA进行BrdU标记。掺入BrdU的染以体吖啶橙(0.05%)处理、紫外光照射、Giemsa染色后,可在染色体上获得清晰的复制带纹。根据众多分裂相所显示的不同复制带型,可初步确定大熊猫每一染色体独特的晚复制带纹。在雌性个体的两个X染色体中,一条X染色体复制明显落后于另一X染色体  相似文献   

2.
大熊猫与黑熊显带染色体的比较研究   总被引:3,自引:0,他引:3  
王亚军  陈红卫 《遗传学报》1999,26(4):309-314
以体外培养的大熊猫(Ailuropodamelanoleuca)与黑熊(Selenarctosthibetanus)外周血淋巴细胞为实验材料,应用BrdU复制带显示技术,研究了大熊猫和黑熊染色体晚复制带带型。通过对大熊猫与黑熊显带染色体带型的比较,发现黑熊部分具端着丝粒的染色体与大熊猫部分具中,亚中,或亚端着丝粒的染色体的整个短臂或整个长臂有明显的带型相似性,在黑熊具中,亚中着丝粒染色体中,仅33  相似文献   

3.
中华大蟾蜍和花背蟾蜍染色体同源性研究   总被引:2,自引:0,他引:2  
本文以培养 扣华大蟾蜍、花背蟾蜍的外周血淋巴细胞为实验材料,采用BrdU南极洲民法和胸苷标记的方法,获得了中华大蟾蜍与花背蟾蜍析搞分辨晚复制带,确定了中华大蟾蜍每一染色体的特征性晚复制区,并就中华大蟾蜍与花背蟾蜍的晚复纹带进行了精确比较,发现中华大蟾蜍与花背蟾蜍的染色体之间具有极高同源性,该结果说明,在相同的培养条件下,只要BrdU掺入S期的时间较为统一,显示复制带的条件基本一致的情况下,利用复  相似文献   

4.
本文用BrdU风油精法进行了荞麦染色体G带显带研究,在其有丝分裂晚前期,早中期和中期的染色体上均显示出了G带带纹。但是,随着分裂时期的进展,染色体上出现的带纹数目依次减少。BrdU和风油精在染色体显带中的作用是使染色体伸长,并增大染色体线性区段间的差异,故显示出G带。  相似文献   

5.
斜鳞蛇核型高分辨显带及减数分裂的观察   总被引:1,自引:0,他引:1  
本文报道了斜鳞蛇的核型和银带。二倍体数目2n-36,其中包括8对8对大染色体(6对中着丝粒染色体,2对亚中着丝粒染色体)和10对小梁色体。其核仁组织区(NORs)位于第1对小梁色体末端。并采用TdR-BrdU处理方法,显示斜鳞蛇复制带,实验证明,用大剂量的胸腺嘧啶核苷阻断细胞周期,再以BrdU渗入S期细胞中复制的染色体区域,并显示带纹。同时还斜鳞蛇的减数分裂进行了观察。  相似文献   

6.
牛蛙染色体的高分辨晚复制带   总被引:2,自引:0,他引:2  
以培养的牛蛙(Rana cataesbeiana)外周血淋巴细胞为材料,采用复制带显示技术,在牛蛙染色体上获得高分辨复制带带型。早、晚复制带纹可多达526条。确定了可作为每一条染色体标记的特征性晚复制区,绘制了牛蛙的染色体高分辩晚复制带带型模式图。以前人对蛙属某些其它种晚复制区及晚复制带型为参考,对蛙属一些种间染色体同源性进行了初步分析。  相似文献   

7.
该文采用家蚕Bomoyx mori活体注射BrdU结合FPG(fluorochrome photolyusis Giem-sa)显带方法,以生殖腺为材料,成功显示出家蚕有丝分裂中期染色体复制带。由于处于S-期的细胞有早有晚,且同一细胞DNA各片段的复制亦有先后,因此BrdU掺入DNA合成的时间也有所不同,从而可产生出早、中、晚复制带型。BrdU掺入时间早,则会在家蚕部分染色体上出现大面积浅染带纹的早复制带。每一染色体皆有其独特的带纹特征,据此可初步将它与其它染色体相互区分;随着BrdU掺入时间的推后,染色体上会出现深浅交替、丰富的带纹,即中复制带型;至S-期DNA合成晚期掺入BrdU,最终染色体出现以深染带纹为主,浅染带纹仅出现于少数染色体的中部、近中部或端部的晚复制带。  相似文献   

8.
本文对我国云南南部的白须长臂猿(H.leucogenys)染色体的G带、C带、晚复制带及Ag-NORs进行了较为详细的研究。它的2n=52,核型公式为44(M或SM)+6(A),XY(M,A)。C带表明一些染色体着丝点C带弱化;有的染色体出现插入的和端位的C带;X染色体两臂有端位C带,Y染色体是C带阳性和晚复制的。Ag-NORs的数目,雌体有4个,雄体有5个,Y染色体上具NOR。本文对白颊长臂猿与其它长臂猿间的亲缘关系、核型进化的可能途径进行了讨论。  相似文献   

9.
大熊猫繁育障碍与染色体脆性位点的相关性研究   总被引:9,自引:2,他引:7  
通过研究建立起适合大熊猫染色体脆性位点表达的BrdU诱导体系。以大熊猫外周血淋巴细胞为材料,通过较长时间培养(96h),采用低浓度BrdU(10μg/ml),短时间(4h)诱导,并结合复制带技术将大熊猫染色体脆性位点的高发生区段准确地定位在No.2和No.12号染色体着丝粒区域。经生物统计学分析发现,No.2和No.12号染色体脆性位点表达频率在个体中有明显差异,而且前者与大熊猫个体的子代存活率呈负相关(r=-0.772).研究结果提示,No.2染色体着丝粒处高效表达的脆性位点地大熊猫个体繁育及其后代的存活是不利的.  相似文献   

10.
通过往孕鼠体内连续注入BrdU和小鼠胚胎细胞在含BrdU培养基中培养,证明小鼠胚胎细胞的NOR活性明显地被BrdU所抑制;当洗去BrdU后,NOR活性可逐步恢复,怀孕早中期胚胎NOR活性被抑制引起小鼠胚胎器官发育的异常:胎儿流产和出生后幼鼠死亡的比例明显增加;出生的幼鼠眼球晶状体上皮细胞异常地出现1-3个直径平均为0.3μm的不透明颗粒。经组织切片蛋白质特经学显色表明,这些颗粒全为蛋白质颗粒。随着  相似文献   

11.
The complete DNA replication sequence of the entire complement of chromosomes in the Chinese hamster may be studied by using the method of continuous H3-thymidine labeling and the method of 5-fluorodeoxyuridine block with H3-thymidine pulse labeling as relief. Many chromosomes start DNA synthesis simultaneously at multiple sites, but the sex chromosomes (the Y and the long arm of the X) begin DNA replication approximately 4.5 hours later and are the last members of the complement to finish replication. Generally, chromosomes or segments of chromosomes that begin replication early complete it early, and those which begin late, complete it late. Many chromosomes bear characteristically late replicating regions. During the last hour of the S phase, the entire Y, the long arm of the X, and chromosomes 10 and 11 are heavily labeled. The short arm of chromosome 1, long arm of chromosome 2, distal portion of chromosome 6, and short arms of chromosomes 7, 8, and 9 are moderately labeled. The long arm of chromosome 1 and the short arm of chromosome 2 also have late replicating zones or bands. The centromeres of chromosomes 4 and 5, and occasionally a band on the short arm of the X are lightly labeled.  相似文献   

12.
A 16 years old girl with Turner syndrome was found to have a 45,X/46,X,t(XqXq)?(q27q23) constitution. The two X chromosomes are attached by their long arms with loss of chromosome material and have one active and one inactive centromere. Analysis of replication patterns with autoradiography and BrdU treatment showed that the abnormal X is always the late replicating one and that the short arm of the second X which is adjacent to the inactive centromere maintains a degree of replication autonomy from the rest of the long arm.  相似文献   

13.
The replication pattern of the X and Y chromosomes at the beginning of the synthetic phase was studied in human lymphocyte cultures partially synchronized by the addition of 5-fluoro-2-deoxyuridine (FUdR). The data were evaluated statistically by an analysis of the distribution of silver grain counts over the X and Y chromosomes. —In cells from normal females, one of the X chromosomes began replication later than any other chromosomes of the complement. The short arm of the late replicating X chromosome started replication earlier than the long arm. The telomeric region of the short arm was a preferential site of DNA synthesis at the beginning of replication. —In partially synchronized lymphocyte cultures from a patient with the XXY syndrome, the Y chromosome started replication together with the late replicating X chromosome. The Y chromosome most frequently replicated synchronously with the short arm of the X. The centromeric region of the Y chromosome initiated synthesis before the telomeric region and appeared to replicate synchronously with the telomeric region of the short arm of the X. These findings are discussed with reference to the pairing of the X and Y chromosomes at meiosis.Supported in part by the National Institute of Health Research Grant HD-01979 and National Foundation Birth Defects Research Grant CRCS-40. Dr. Knight was a predoctoral fellow under National Institute of Health Training Program HD-00049-09.  相似文献   

14.
M Ray 《Cytobios》1986,48(193):85-95
Replication patterns of the normal male Chinese hamster chromosomes and the three cell lines CHW, 1102 and 1103, were determined using fluorescent, plus Giemsa or acridine orange, techniques. The individual chromosomes or chromosomal segments were consistent in the replication patterns of normal Chinese hamster chromosomes and all the transformed cell lines. Late DNA replication was regularly identified in the long arm of the X chromosome, the entire Y chromosome, the short arms of chromosomes 6 and 7, and the paracentromeric regions of chromosomes 8, 9 and 10. A similar consistency was demonstrated in the large late replicating areas of chromosomes X and Y. Each cell line had specific marker chromosomes by which the cell line was identified and their replication patterns have been described. The chromosome analysis in cell line 1103 indicated that chromosomes 2, 3, 8 and 9 were more stable than others, of which chromosome 2 was extremely stable. The markers M4 and M5 in cell line 1103 are very interesting. The cytogenetic behaviour of marker M4 indicated a new phenomenon of translocation by simple association. The marker chromosome M5 indicated that inactivation spread to the early replicating distal region. These cell lines are very useful tools for studying replication patterns and providing a basic understanding of mammalian cytogenetics.  相似文献   

15.
The distribution of acetylated isoforms of histone H4 along Chinese hamster chromosomes has been studied by immunostaining with antibodies recognizing H4 acetylated at defined lysines in its N-terminal domain. The heterochromatic long arm of the X chromosome in both female (CHO) and male (DON) cell lines is underacetylated at three out of four lysines (5, 8, and 12). In contrast, the level of acetylation at lysine 16, which is the first to be acetylated in mammals, was similar in X chromosomes and autosomes. Labeling of the cells with bromodeoxyuridine (BrdU) to mark late-replicating chromosome domains, followed by double immunostaining with antibodies to BrdU and acetylated H4, showed a close, though not perfect, correlation between late replication and low levels of H4 acetylation. The results show that levels of histone acetylation are associated with the replication timing of defined domains on both the X chromosome and autosomes, but the exceptions we observe suggest that this link is not absolute or essential.  相似文献   

16.
Z. Gibas  J. Limon 《Chromosoma》1978,69(1):113-120
Isolabeling segments were found in the distal region of the long arm of Y chromosomes derived from human leukocytes grown through two replication cycles in medium containing BrdU and stained by the FPG technique. Three main types of Y chromosome staining patterns were demonstrated: I-Y chromosome with typical SCD, II-Y chromosome with weakly stained distal regions of long arms (isolabeling segments), III-Y chromosome with both terminal regions displaying SCD interrupted by one isolabeled segment. The existence of different types of Y chromosome staining patterns was explained on the basis of the previously described hypothesis of unequal distribution of thymine residues between two DNA polynucleotide chains in the distal part of the long arms of human Y chromosomes.  相似文献   

17.
Summary Early replication of prometaphasic human sex chromosomes was studied with the bromodeoxyuridine (BrdU)-replication technique. The studies reveal that two distal segments of Xp, including bands Xp 22.13 and Xp 22.3, replicate early in S-phase and therefore may not be subject to random inactivation. Furthermore, the replication of these distal segments of Xp occurs synchronously with those of the short arm of the Y chromosome including bands Yp 11.2 and Yp 11.32. These segments of Xp and Yp correspond well to the pairing segment of the X and Y chromosomes where a synaptonemal complex forms at early pachytene of human spermatogenesis. The homologous early replication of Yp and the distal portion of Xp may be interpreted as a remnant left untouched by the differentiation of heteromorphic sex chromosomes from originally homomorphic autosomes. A third early replicating segment is situated on the long arm of the X chromosome and corresponds to band Xq 13.1. This segment may be correlated with the X-inactivation center postulated by Therman et al. (1979).  相似文献   

18.
Mitotic analyses using RBA- and C-banding were performed on Stenodermatine bats with X-autosome (XY1Y2) and X- and Y- autosome (neo-XY) translocations. RBA-banded metaphases of females revealed differential replication of the inactive X chromosome. An early replicating band comprises the short arm of the X, and an intermediate replicating band is located interstitially on the long arm. The early replicating short arm has a homologous counterpart either in the form of a free autosome (the Y2) or as part of the Y. Both the "autosomal" short arm of the X and its homologue fused to the Y are C-band negative and behave autonomously from the remainder of the sex chromosomes. They are separated from X and Y chromatin by centromeric heterochromatin which presumably acts as a barrier. The intermediate replicating region of the long arm of the X is also present in the subfamily Phyllostominae. In both subfamilies this region lacks a homologous counterpart. However, it may also represent a translocated autosome which, unlike the short arm of the X, is not separated from the inactive X by centromeric heterochromatin. Its intermediate replication time may represent a retarded replication due to its juxtaposition to late replicating X chromatin. These data are discussed in light of the theory of the evolution of sex chromosome heteromorphism, specifically as it applies to mammals.  相似文献   

19.
Combining higher resolution chromosome analysis and bromodeoxyuridine (BrdU) incorporation, our study demonstrates that: (1) Human chromosomes synthesize DNA in a segmental but highly coordinated fashion. Each chromosome replicates according to its innate pattern of chromosome structure (banding). (2) R-positive bands are demonstrated as the initiation sites of DNA synthesis in all human chromosomes, including late-replicating chromosomes such as the LX and Y. (3) Replication is clearly biphasic in the sense that late-replicating elements, such as G-bands, the Yh, C-bands, and the entire LX, initiate replication after it has been completed in the autosomal R-bands (euchromatin) with minimal or no overlap. The chronological priority of R-band replication followed by G-bands is also retained in the facultative heterochromatin or late-replicating X chromosome (LX). Therefore, the inclusion of G-bands as a truly late-replicating chromatin type or G(Q)-heterochromatin is suggested. (4) Lateral asymmetry (LA) in the Y chromosome can be detected after less than half-cycle in 5-bromodeoxyuridine (BrdUrd), and the presence of at least two regions of LA in this chromosome is confirmed. (5) Finally, the replicational map of human chromosomes is presented, and a model of replication chronology is suggested. Based on this model, a system of nomenclature is proposed to place individual mitoses (or chromosomes) within S-phase, according to their pattern of replication banding. Potential applications of this methodology in clinical and theoretical cytogenetics are suggested.  相似文献   

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