7.8
组蛋白具有从核小体延伸出的柔性 N 末端尾部。 这些组蛋白尾部经常受到翻译后修饰,例如乙酰化、甲基化、磷酸化和泛素化。 这些修饰的特定组合形成了影响染色质折叠和组织特异性基因表达的“组蛋白代码”。
乙酰化
组蛋白乙酰转移酶将乙酰基添加到组蛋白上。 另一种酶,组蛋白脱乙酰酶,可去除乙酰化组蛋白中的乙酰…
核小体含有 组成的蛋白质核心 四个组蛋白核心蛋白 H2A,H2B,H3和H4。除了这四个 标准的核心组蛋白 真核生物还拥有一个 每个组蛋白的几种变体,H4除外。的氨基末端尾巴 标准和变体核心 组蛋白突出 来自核小体 并且高度 非结构化且可移动。这些尾巴,包括 大约30个氨基酸 有几种形式 共价修饰 如那个 赖氨酸的乙酰化 磷酸化 丝氨酸和单,二,或赖氨酸的三甲基化。导致的反应 对这些修改 被. 催化 不同的酶,例如甲基转移酶,乙酰酶和激酶。这些酶 集体 称为作家。催化反应 这些化学物质的去除 基团被以下分子催化 诸如脱甲基酶之类的酶,脱乙酰酶和磷酸酶。这些酶是共同的 称为橡皮擦。在众多之中 可能的组合 不同的组蛋白变体 和氨基末端 仅修改 某些协调集 已知发生。其中一些组合 修改集 编码一个特定的 单元的信号。例如,一个 修改集 发出DNA损伤信号并 需要维修。另一个信号基因 表达,而其他 信号基因沉默或 染色质修饰 喜欢建立和 异染色质的扩散。这个编码系统是 称为组蛋白代码。信号编码 在这些修改中 由特定解码 调节蛋白称为 读者。这些蛋白质和 多蛋白复合物 包含各种小 域,每个域 识别一个特定的 组蛋白标记。它们紧紧地绑在一个 染色质区域 包含几个 不同的组蛋白标记 并吸引更多 蛋白质复合物 具有催化活性。这导致具体 生物学功能 例如染色质修饰 基因表达和基因 沉默。
View the full transcript and gain access to JoVE Core videos
Q1: What are histones and what role do they play in DNA organization?
Histones are small, positively charged proteins around which DNA wraps to form nucleosomes, the basic units of chromatin. They enable efficient packaging of DNA into the nucleus while regulating gene expression. Histone modifications alter chromatin structure, controlling DNA accessibility and transcriptional activity without changing the underlying DNA sequence.
Q2: How do histone modifications affect chromatin structure and gene accessibility?
Histone modifications, such as acetylation and methylation, alter the charge and structure of histones, loosening or tightening DNA wrapping. These changes regulate chromatin compaction, making DNA more or less accessible to transcription machinery. Modified histones can promote euchromatin formation, allowing gene expression, or contribute to heterochromatin formation, silencing genes.
Q3: What is the difference between histone acetylation and histone methylation?
Histone acetylation adds acetyl groups to lysine residues, neutralizing positive charges and loosening DNA binding, typically activating transcription. Histone methylation adds methyl groups to lysine or arginine residues without changing charge, serving diverse regulatory roles—some methylation marks activate genes while others repress them, depending on the specific residue modified.
Q4: Why are histone modifications considered epigenetic changes?
Histone modifications are epigenetic because they alter gene expression without changing DNA sequence. These reversible chemical modifications can be inherited through cell divisions and sometimes across generations, influencing which genes are active or silent. They provide a flexible mechanism for cells to respond to environmental signals and developmental cues.
Q5: How do histone modifications regulate transcriptional activation and repression?
Histone modifications recruit specific proteins that either promote or inhibit transcription. Activating modifications like H3K9 acetylation attract transcription factors and RNA polymerase, facilitating gene expression. Repressive modifications like H3K9 methylation recruit silencing complexes that compact chromatin, blocking transcriptional machinery access and preventing gene expression.
Q6: What enzymes are responsible for adding and removing histone modifications?
Histone acetyltransferases (HATs) add acetyl groups, while histone deacetylases (HDACs) remove them. Histone methyltransferases (HMTs) add methyl groups, and histone demethylases remove them. These opposing enzyme activities create a dynamic system where histone modification states can be rapidly altered, allowing cells to quickly adjust gene expression in response to signals.
Q7: How do histone modifications influence constitutive heterochromatin and facultative heterochromatin formation?
Specific histone modifications direct chromatin into different states. Repressive modifications establish and maintain constitutive heterochromatin and facultative heterochromatin, silencing genes permanently or conditionally. Activating modifications promote open chromatin, allowing gene expression. The pattern of histone modifications across a region determines whether that chromatin remains condensed or becomes accessible.