Therapeutic targeting potential of the protein lysine and arginine methyltransferases to reverse cancer chemoresistance.

IF 3.9 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Frontiers in Molecular Biosciences Pub Date : 2024-12-05 eCollection Date: 2024-01-01 DOI:10.3389/fmolb.2024.1455415
Isaac Micallef, Kimberly Fenech, Byron Baron
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Abstract

Cancer treatments have continued to improve tremendously over the past decade, but therapy resistance is still a common, major factor encountered by patients diagnosed with cancer. Chemoresistance arises due to various circumstances and among these causes, increasing evidence has shown that enzymes referred to as protein methyltransferases (PMTs) play a significant role in the development of chemoresistance in various cancers. These enzymes are responsible for the methylation of different amino acids, particularly lysine and arginine, via protein lysine methyltransferases (PKMTs) and protein arginine methyltransferases (PRMTs), respectively. Various PMTs have been identified to be dysregulated in the development of cancer and chemoresistance. Nonetheless, the functional role of these PMTs in the development of chemoresistance is poorly characterised. This advocates the need for innovative approaches and technologies suitable for better characterisation of these PMTs and their potential clinical inhibitors. In the case of a handful of PMTs, inhibitory small molecules which can function as anticancer drugs have been developed and have also entered clinical trials. Considering all this, PMTs have become a promising and valuable target in cancer chemoresistance related research. This review will give a small introduction on the different PKMTs and PRMTs families which are dysregulated in different cancers and the known proteins targeted by the respective enzymes. The focus will then shift towards PMTs known to be involved in chemoresistance development and the inhibitors developed against these, together with their mode of action. Lastly, the current obstacles and future perspectives of PMT inhibitors in cancer chemoresistance will be discussed.

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蛋白质赖氨酸和精氨酸甲基转移酶逆转癌症化疗耐药的治疗靶向潜力。
过去十年来,癌症治疗方法不断得到极大改善,但耐药性仍然是确诊癌症患者遇到的一个常见的主要因素。化疗耐药性的产生有多种原因,其中越来越多的证据表明,被称为蛋白质甲基转移酶(PMTs)的酶在各种癌症的化疗耐药性发展过程中起着重要作用。这些酶分别通过蛋白质赖氨酸甲基转移酶(PKMTs)和蛋白质精氨酸甲基转移酶(PRMTs)负责不同氨基酸的甲基化,尤其是赖氨酸和精氨酸。目前已发现多种 PMTs 在癌症和化疗耐药性的发展过程中出现失调。然而,这些 PMTs 在化疗耐药性产生过程中的功能性作用却鲜为人知。因此,需要创新的方法和技术来更好地描述这些 PMTs 及其潜在的临床抑制剂。对于少数几种 PMTs,已开发出可作为抗癌药物的抑制性小分子,并已进入临床试验阶段。综上所述,PMTs 已成为癌症化疗耐药性相关研究中一个前景广阔且极具价值的靶点。本综述将简要介绍在不同癌症中失调的不同 PKMTs 和 PRMTs 家族,以及各酶靶向的已知蛋白质。然后,重点将转向已知参与化疗耐药性产生的 PMMTs,以及针对这些酶开发的抑制剂及其作用模式。最后,将讨论 PMT 抑制剂在癌症化疗耐药性方面的当前障碍和未来前景。
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来源期刊
Frontiers in Molecular Biosciences
Frontiers in Molecular Biosciences Biochemistry, Genetics and Molecular Biology-Biochemistry
CiteScore
7.20
自引率
4.00%
发文量
1361
审稿时长
14 weeks
期刊介绍: Much of contemporary investigation in the life sciences is devoted to the molecular-scale understanding of the relationships between genes and the environment — in particular, dynamic alterations in the levels, modifications, and interactions of cellular effectors, including proteins. Frontiers in Molecular Biosciences offers an international publication platform for basic as well as applied research; we encourage contributions spanning both established and emerging areas of biology. To this end, the journal draws from empirical disciplines such as structural biology, enzymology, biochemistry, and biophysics, capitalizing as well on the technological advancements that have enabled metabolomics and proteomics measurements in massively parallel throughput, and the development of robust and innovative computational biology strategies. We also recognize influences from medicine and technology, welcoming studies in molecular genetics, molecular diagnostics and therapeutics, and nanotechnology. Our ultimate objective is the comprehensive illustration of the molecular mechanisms regulating proteins, nucleic acids, carbohydrates, lipids, and small metabolites in organisms across all branches of life. In addition to interesting new findings, techniques, and applications, Frontiers in Molecular Biosciences will consider new testable hypotheses to inspire different perspectives and stimulate scientific dialogue. The integration of in silico, in vitro, and in vivo approaches will benefit endeavors across all domains of the life sciences.
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