海马技术对HIV/HCV共感染免疫无应答者CD4+T淋巴细胞氧化磷酸化和糖酵解的研究

L. Korolevskaya, Violetta V. Vlasova, N. Shmagel, E. V. Saidakova
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引用次数: 0

摘要

氧化磷酸化和糖酵解对CD4+ t淋巴细胞的存活、分裂和功能至关重要。然而,间接证据表明,在hiv阳性丙型肝炎病毒(HCV)共感染对抗逆转录病毒治疗免疫无反应的患者中,CD4+ t细胞代谢活性参数被破坏。这一信息提示,在免疫无应答者中,抗逆转录病毒药物抑制病毒后CD4+ t淋巴细胞无法有效分裂和数量增加可能是由于代谢功能障碍所致。新发布的使用海马XF设备分析细胞外通量的技术允许评估细胞代谢活动。本研究的目的是利用海马技术评估HIV/HCV共感染免疫无应答者CD4+ t淋巴细胞氧化磷酸化和糖酵解的效率。研究两组患者外周血样本:CD4+ t细胞计数小于350/l的HIV/HCV共感染免疫无应答者和CD4+ t细胞计数大于500/l的HIV/HCV共感染免疫应答者。在分离的CD4+ t淋巴细胞中,评估了线粒体电子传递链复合物的基础和最大耗氧率,以及糖酵解过程中形成的质子对培养基的酸化率。已经确定,在HIV/HCV共感染的免疫无应答者中,CD4+ t细胞线粒体的基础和最大耗氧量都降低。此外,在免疫无应答者的分离CD4+ t淋巴细胞中,糖酵解的基础率增加。可以假设,在HIV/HCV共感染的免疫无应答者中,有相当一部分CD4+ t淋巴细胞被激活并准备进行稳态增殖,这加剧了对额外能量和大分子的需求。然而,细胞无法以协调的方式改变其代谢以满足这些需求。在HIV/HCV共感染的免疫无应答者中,已确定的代谢途径失调可能导致CD4+ t淋巴细胞再生能力低下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study of oxidative phosphorylation and glycolysis in CD4+T lymphocytes of HIV/HCV coinfected immunological non-responders by means of the seahorse technology
Oxidative phosphorylation and glycolysis are essential for CD4+ T-lymphocyte survival, division, and functioning. However, indirect evidence suggests that in HIV-positive hepatitis C virus (HCV) coinfected immunological non-responders to antiretroviral therapy, the CD4+ T-cell metabolic activity parameters are violated. This information implies that in immunological non-responders, CD4+ T-lymphocytes' inability to productively divide and increase in number after viral suppression by antiretroviral drugs may be due to metabolic dysfunction. The newly released technology for the analysis of extracellular fluxes using seahorse XF equipment permits assessment of the cells metabolic activity. The aim of this study was to evaluate the efficiency of oxidative phosphorylation and glycolysis in CD4+ T-lymphocytes of HIV/HCV coinfected immunological non-responders using Seahorse technology. Peripheral blood samples from patients of two groups were studied: HIV/HCV coinfected immunological non-responders with CD4+ T-lymphocyte count less than 350/l and HIV/HCV coinfected immunological responders with CD4+ T-cell count more than 500/l. In isolated CD4+ T-lymphocytes, the basal and maximal oxygen consumption rates by complexes of the mitochondrial electron transport chain, as well as the rate of medium acidification by protons formed during glycolysis, were assessed. It has been established that in HIV/HCV coinfected immunological non-responders, both basal and maximal oxygen consumption rates by CD4+ T-cell mitochondria are reduced. Moreover, in isolated CD4+ T-lymphocytes of immunological non-responders, the basal rate of glycolysis is increased. It can be assumed that a significant part of CD4+ T-lymphocytes in HIV/HCV coinfected immunological non-responders is activated and ready for homeostatic proliferation, which aggravates the need for additional energy and macromolecules. However, cells are unable to change their metabolism in a coordinated manner to meet these demands. The identified dysregulation of metabolic pathways may contribute to the low regenerative capacity of CD4+ T-lymphocytes in HIV/HCV coinfected immunological non-responders.
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