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相关概念视频

Pleiotropy01:33

Pleiotropy

Pleiotropy is the phenomenon in which a single gene impacts multiple, seemingly unrelated phenotypic traits. For example, defects in the SOX10 gene cause Waardenburg Syndrome Type 4, or WS4, which can cause defects in pigmentation, hearing impairments, and an absence of intestinal contractions necessary for elimination. This diversity of phenotypes results from the expression pattern of SOX10 in early embryonic and fetal development. SOX10 is found in neural crest cells that form melanocytes,...
X-linked Traits01:19

X-linked Traits

In most mammalian species, females have two X sex chromosomes and males have an X and Y. As a result, mutations on the X chromosome in females may be masked by the presence of a normal allele on the second X. In contrast, a mutation on the X chromosome in males more often causes observable biological defects, as there is no normal X to compensate. Trait variations arising from mutations on the X chromosome are called “X-linked”.
Inheritance of Chromatin Structures03:17

Inheritance of Chromatin Structures

Epigenetics is the study of inherited changes in a cell's phenotype without changing the DNA sequences. It provides a form of memory for the differential gene expression pattern to maintain cell lineage, position-effect variegation, dosage compensation, and maintenance of chromatin structures such as telomeres and centromeres. For example, the structure and location of the centromere on chromosomes are epigenetically inherited. Its functionality is not dictated or ensured by the underlying DNA...
Animal Mitochondrial Genetics02:59

Animal Mitochondrial Genetics

Among all the organelles in an animal cell, only mitochondria have their own independent genomes. Animal mitochondrial DNA is a double-stranded, closed-circular molecule with around 20,000 base pairs. Mitochondrial DNA is unique in that one of its two strands, the heavy, or H, -strand is guanine rich, whereas the complementary strand is cytosine rich and called the light, or L, -strand. Compared to nuclear DNA, mitochondrial DNA has a very low percentage of non-coding regions and is marked by...
Genomic Imprinting and Inheritance02:30

Genomic Imprinting and Inheritance

Diploid organisms inherit genetic material through chromosomes from both parents. Copies of the same gene are known as alleles. In most cases, both alleles are simultaneously expressed and allow various cellular processes to function optimally. If one of the alleles is missing or mutated, the expression of the other allele can compensate; however, this is not true for all genes.
The expression of some genes depends on which parent passed the gene to the offspring, through a phenomenon known as...
X-linked Traits01:19

X-linked Traits

In most mammalian species, females have two X sex chromosomes and males have an X and Y. As a result, mutations on the X chromosome in females may be masked by the presence of a normal allele on the second X. In contrast, a mutation on the X chromosome in males more often causes observable biological defects, as there is no normal X to compensate. Trait variations arising from mutations on the X chromosome are called “X-linked”.

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相关实验视频

Updated: Jul 12, 2026

Evaluation of Mammary Gland Development and Function in Mouse Models
08:51

Evaluation of Mammary Gland Development and Function in Mouse Models

Published on: July 21, 2011

哺乳动物发育中的表观遗传重编程

W Reik1, W Dean, J Walter

  • 1Laboratory of Developmental Genetics and Imprinting, The Babraham Institute, Cambridge CB2 4AT, UK.

Science (New York, N.Y.)
|August 11, 2001
PubMed
概括

哺乳动物DNA甲基化模式在发育过程中被重新编程,这对于建立细胞潜力和印记至关重要. 这种表观遗传重编程涉及全基因组脱甲基和再甲基,影响基因表达和细胞分化.

科学领域:

  • 表观遗传学 在表观遗传学中,表观遗传学是指表观遗传学.
  • 基因组学就是基因组学.
  • 发展生物学 发展生物学

背景情况:

  • 基因组甲基化是一种关键的表观遗传修饰,可以调节基因组功能.
  • 体细胞甲基化模式通常是稳定的,但在生殖细胞和早期胚胎中经历重新编程.
  • 这种重新编程对于诸如印记和建立发展潜力的过程至关重要.

研究的目的:

  • 审查关于哺乳动物DNA甲基化重编程的当前知识.
  • 探索重编程在建立核强度和抹去表观遗传信息中的作用.
  • 讨论重新编程,发育能力和印记之间的关系.

主要方法:

  • 审查关于DNA甲基化和表观遗传重编程的现有文献.
  • 分析已知维护DNA甲基化 (例如Dnmt1) 和新甲基化 (例如Dnmt3a,Dnmt3b) 的机制.
  • 在哺乳动物发育过程中观察到的全基因组甲基化变化的讨论.

主要成果:

  • 哺乳动物表现出全基因组DNA甲基化重编程的独特发育时期.
  • 重编程涉及去甲基化,其次是细胞或组织特定的再甲基化.
  • 这些事件对于印记和潜在地建立全能性至关重要.

更多相关视频

Visualization of Chondrocyte Intercalation and Directional Proliferation via Zebrabow Clonal Cell Analysis in the Embryonic Meckel’s Cartilage
06:40

Visualization of Chondrocyte Intercalation and Directional Proliferation via Zebrabow Clonal Cell Analysis in the Embryonic Meckel’s Cartilage

Published on: October 21, 2015

Indirect Immunofluorescence on Frozen Sections of Mouse Mammary Gland
11:13

Indirect Immunofluorescence on Frozen Sections of Mouse Mammary Gland

Published on: December 1, 2015

相关实验视频

Last Updated: Jul 12, 2026

Evaluation of Mammary Gland Development and Function in Mouse Models
08:51

Evaluation of Mammary Gland Development and Function in Mouse Models

Published on: July 21, 2011

Visualization of Chondrocyte Intercalation and Directional Proliferation via Zebrabow Clonal Cell Analysis in the Embryonic Meckel’s Cartilage
06:40

Visualization of Chondrocyte Intercalation and Directional Proliferation via Zebrabow Clonal Cell Analysis in the Embryonic Meckel’s Cartilage

Published on: October 21, 2015

Indirect Immunofluorescence on Frozen Sections of Mouse Mammary Gland
11:13

Indirect Immunofluorescence on Frozen Sections of Mouse Mammary Gland

Published on: December 1, 2015

结论:

  • DNA甲基化重编程是哺乳动物发育的一个基本过程.
  • 了解重编程动态是理解发育潜能和印记的关键.
  • 需要进一步的研究来阐明脱甲基化酶的精确机制和功能.