对组织结构、遗传学、表观遗传学和细胞代谢对致癌作用的相对贡献的批判性评价

IF 3.2 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Progress in Biophysics & Molecular Biology Pub Date : 2023-09-01 DOI:10.1016/j.pbiomolbio.2023.05.004
Thomas W. Grunt , Gerwin Heller
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引用次数: 1

摘要

在这里我们对比几种致癌模型。体细胞突变理论认为突变是恶性肿瘤的主要原因。然而,前后矛盾导致了另一种解释。例如,组织组织场理论认为组织结构紊乱是主要原因。这两个模型都可以使用系统生物学方法来协调,根据系统生物学方法,肿瘤徘徊在有序和混沌之间的自组织临界状态中,是多重偏差的突发结果,受一般自然定律的约束:通过增加熵(热力学第二定律)或测量叠加量子系统(量子力学)时的不确定退相干可解释的不可避免的变化(突变),然后是达尔文选择。基因组表达受表观遗传学调控。两个系统相互配合。因此,癌症既不是一个突变问题,也不是一个表观遗传问题。相反,表观遗传学将环境线索与内源性遗传学联系起来,从而产生一种包含特定癌症-调节网络的调节机制。有趣的是,突变发生在这种机制的各个层面(致癌基因/肿瘤抑制剂、表观遗传学修饰物、结构基因、代谢基因)。因此,在大多数情况下,DNA突变可能是最初和关键的癌症诱因。
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A critical appraisal of the relative contribution of tissue architecture, genetics, epigenetics and cell metabolism to carcinogenesis

Here we contrast several carcinogenesis models. The somatic-mutation-theory posits mutations as main causes of malignancy. However, inconsistencies led to alternative explanations. For example, the tissue-organization-field-theory considers disrupted tissue-architecture as main cause. Both models can be reconciled using systems-biology-approaches, according to which tumors hover in states of self-organized criticality between order and chaos, are emergent results of multiple deviations and are subject to general laws of nature: inevitable variation(mutation) explainable by increased entropy(second-law-of-thermodynamics) or indeterminate decoherence upon measurement of superposed quantum systems(quantum mechanics), followed by Darwinian-selection. Genomic expression is regulated by epigenetics. Both systems cooperate. So cancer is neither just a mutational nor an epigenetic problem. Rather, epigenetics links environmental cues to endogenous genetics engendering a regulatory machinery that encompasses specific cancer-metabolic-networks. Interestingly, mutations occur at all levels of this machinery (oncogenes/tumor-suppressors, epigenetic-modifiers, structure-genes, metabolic-genes). Therefore, in most cases, DNA mutations may be the initial and crucial cancer-promoting triggers.

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来源期刊
Progress in Biophysics & Molecular Biology
Progress in Biophysics & Molecular Biology 生物-生化与分子生物学
CiteScore
8.60
自引率
7.90%
发文量
85
审稿时长
85 days
期刊介绍: Progress in Biophysics & Molecular Biology is an international review journal and covers the ground between the physical and biological sciences since its launch in 1950. It indicates to the physicist the great variety of unsolved problems awaiting attention in biology and medicine. The biologist and biochemist will find that this journal presents new and stimulating ideas and novel approaches to studying and influencing structural and functional properties of the living organism. This journal will be of particular interest to biophysicists, biologists, biochemists, cell physiologists, systems biologists, and molecular biologists.
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