ABE244
Anti-monomethyl-Histone H3 Antibody (Lys36)
from rabbit, purified by affinity chromatography
别名:
Histone H3 (monomethyl Lys36), H3K36me, H3 histone family, member T, Histone 3, H3, Histone cluster 3, H3
生物来源
rabbit
质量水平
抗体形式
affinity isolated antibody
抗体产品类型
primary antibodies
克隆
polyclonal
纯化方式
affinity chromatography
种属反应性
mouse, human, rat
技术
dot blot: suitable
immunoprecipitation (IP): suitable
western blot: suitable
NCBI登记号
UniProt登记号
运输
wet ice
靶向翻译后修饰
monomethylation (Lys36)
基因信息
human ... HIST1H3F(8968)
一般描述
免疫原
应用
Dot Blot Specificity Analysis: Unmodified and various modified Histone peptides (see table) were probed with Anti-monomethyl-Histone H3 (Lys36) (0.5 µg/mL).
Epigenetics & Nuclear Function
Histones
生化/生理作用
外形
制备说明
分析说明
HeLa acid extract and various recombinant Histone proteins
Western Blot Analysis: 0.05 µg/mL of this antibody detected monomethyl-Histone H3 (Lys36) in 10 µg of HeLa acid extract.
其他说明
免责声明
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储存分类代码
12 - Non Combustible Liquids
WGK
WGK 1
闪点(°F)
Not applicable
闪点(°C)
Not applicable
相关内容
Cancer is a complex disease manifestation. At its core, it remains a disease of abnormal cellular proliferation and inappropriate gene expression. In the early days, carcinogenesis was viewed simply as resulting from a collection of genetic mutations that altered the gene expression of key oncogenic genes or tumor suppressor genes leading to uncontrolled growth and disease (Virani, S et al 2012). Today, however, research is showing that carcinogenesis results from the successive accumulation of heritable genetic and epigenetic changes. Moreover, the success in how we predict, treat and overcome cancer will likely involve not only understanding the consequences of direct genetic changes that can cause cancer, but also how the epigenetic and environmental changes cause cancer (Johnson C et al 2015; Waldmann T et al 2013). Epigenetics is the study of heritable gene expression as it relates to changes in DNA structure that are not tied to changes in DNA sequence but, instead, are tied to how the nucleic acid material is read or processed via the myriad of protein-protein, protein-nucleic acid, and nucleic acid-nucleic acid interactions that ultimately manifest themselves into a specific expression phenotype (Ngai SC et al 2012, Johnson C et al 2015). This review will discuss some of the principal aspects of epigenetic research and how they relate to our current understanding of carcinogenesis. Because epigenetics affects phenotype and changes in epigenetics are thought to be key to environmental adaptability and thus may in fact be reversed or manipulated, understanding the integration of experimental and epidemiologic science surrounding cancer and its many manifestations should lead to more effective cancer prognostics as well as treatments (Virani S et al 2012).
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