U Kin Pong, Subramanian Venkataraman, Nicholas Antony P, Thompson Paul R, Ferretti Patrizia
Developmental Biology Unit, UCL Institute of Child Health, London WC1N 1EH, UK.
Department of Chemistry, TSRI, Scripps Florida, FL 33458, USA.
Biochim Biophys Acta. 2014 Jun;1843(6):1162-71. doi: 10.1016/j.bbamcr.2014.02.018. Epub 2014 Mar 5.
PADs (peptidylarginine deiminases) are calcium-dependent enzymes that change protein-bound arginine to citrulline (citrullination/deimination) affecting protein conformation and function. PAD up-regulation following chick spinal cord injury has been linked to extensive tissue damage and loss of regenerative capability. Having found that human neural stem cells (hNSCs) expressed PAD2 and PAD3, we studied PAD function in these cells and investigated PAD3 as a potential target for neuroprotection by mimicking calcium-induced secondary injury responses. We show that PAD3, rather than PAD2 is a modulator of cell growth/death and that PAD activity is not associated with caspase-3-dependent cell death, but is required for AIF (apoptosis inducing factor)-mediated apoptosis. PAD inhibition prevents association of PAD3 with AIF and AIF cleavage required for its translocation to the nucleus. Finally, PAD inhibition also hinders calcium-induced cytoskeleton disassembly and association of PAD3 with vimentin, that we show to be associated also with AIF; together this suggests that PAD-dependent cytoskeleton disassembly may play a role in AIF translocation to the nucleus. This is the first study highlighting a role of PAD activity in balancing hNSC survival/death, identifying PAD3 as an important upstream regulator of calcium-induced apoptosis, which could be targeted to reduce neural loss, and shedding light on the mechanisms involved.
肽基精氨酸脱亚氨酶(PADs)是钙依赖性酶,可将与蛋白质结合的精氨酸转变为瓜氨酸(瓜氨酸化/脱亚胺作用),从而影响蛋白质的构象和功能。鸡脊髓损伤后PAD上调与广泛的组织损伤和再生能力丧失有关。我们发现人类神经干细胞(hNSCs)表达PAD2和PAD3,于是研究了这些细胞中PAD的功能,并通过模拟钙诱导的继发性损伤反应,将PAD3作为神经保护的潜在靶点进行研究。我们发现,PAD3而非PAD2是细胞生长/死亡的调节因子,且PAD活性与半胱天冬酶-3依赖性细胞死亡无关,但却是凋亡诱导因子(AIF)介导的凋亡所必需的。抑制PAD可阻止PAD3与AIF的结合以及AIF转位至细胞核所需的切割。最后,抑制PAD还会阻碍钙诱导的细胞骨架解体以及PAD3与波形蛋白的结合,我们发现波形蛋白也与AIF有关;这表明依赖于PAD的细胞骨架解体可能在AIF转位至细胞核过程中发挥作用。这是第一项强调PAD活性在平衡hNSC存活/死亡中作用的研究,确定PAD3是钙诱导凋亡的重要上游调节因子,该因子可作为靶点以减少神经损失,并阐明其中涉及的机制。