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Functional significance of the LAR receptor protein tyrosine phosphatase family in development and diseases.

机译:LAR受体蛋白酪氨酸磷酸酶家族在发育和疾病中的功能意义。

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摘要

The protein tyrosine phosphatases (PTPs) have emerged as critical players in diverse cellular functions. The focus of this review is the leukocyte common antigen-related (LAR) subfamily of receptor PTPs (RPTPs). This subfamily is composed of three vertebrate homologs, LAR, RPTP-sigma, and RPTP-delta, as well as few invertebrates orthologs such as Dlar. LAR-RPTPs have a predominant function in nervous system development that is conserved throughout evolution. Proteolytic cleavage of LAR-RPTP proproteins results in the noncovalent association of an extracellular domain resembling cell adhesion molecules and intracellular tandem PTPs domains, which is likely regulated via dimerization. Their receptor-like structures allow them to sense the extracellular environment and transduce signals intracellularly via their cytosolic PTP domains. Although many interacting partners of the LAR-RPTPs have been identified and suggest a role for the LAR-RPTPs in actin remodeling, very little is known about the mechanisms of action of RPTPs. LAR-RPTPs recently raised a lot of interest when they were shown to regulate neurite growth and nerve regeneration in transgenic animal models. In addition, LAR-RPTPs have also been implicated in metabolic regulation and cancer. This RPTP subfamily is likely to become important as drug targets in these various human pathologies, but further understanding of their complex signal transduction cascades will be required.
机译:蛋白质酪氨酸磷酸酶(PTP)已成为多种细胞功能中的关键角色。这篇综述的重点是受体PTP(RPTP)的白细胞常见抗原相关(LAR)亚家族。该亚科由三个脊椎动物同源物LAR,RPTP-sigma和RPTP-δ以及少量无脊椎动物直系同源物(例如Dlar)组成。 LAR-RPTPs在神经系统发育中具有主要功能,在整个进化过程中都得到保护。 LAR-RPTP前蛋白的蛋白水解切割导致类似于细胞粘附分子的细胞外域和细胞内串联PTP域的非共价结合,这很可能是通过二聚化来调节的。它们的受体样结构使它们能够感知胞外环境并通过其胞质PTP结构域在细胞内转导信号。尽管已经确定了LAR-RPTP的许多相互作用伙伴,并暗示了LAR-RPTP在肌动蛋白重塑中的作用,但对RPTP的作用机理知之甚少。当LAR-RPTP在转基因动物模型中被证明可以调节神经突生长和神经再生时,它们引起了人们的极大兴趣。另外,LAR-RPTP也与代谢调节和癌症有关。在这些人类疾病中,RPTP亚家族可能会成为重要的药物靶标,但仍需要进一步了解其复杂的信号转导级联。

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