Dickman K G, Mandel L J
Department of Cell Biology, Duke University Medical Center, Durham, North Carolina 27710.
Am J Physiol. 1992 Aug;263(2 Pt 2):F342-51. doi: 10.1152/ajprenal.1992.263.2.F342.
HCO3-/CO2 can affect proximal tubule energy metabolism directly by serving as a substrate for metabolic reactions and indirectly through ATP utilization by HCO3(-)-coupled Na+ reabsorption and proton secretion. In this study, metabolic and transport roles of HCO3-/CO2 were examined by measuring the effects of HCO3-/CO2 removal and transport inhibitors on oxygen consumption (QO2) in suspensions of rabbit proximal tubules. Removal of medium HCO3-/CO2 inhibited ouabain-sensitive, ouabain-insensitive, and uncoupled QO2. Consistent with metabolic inhibition, the absence of HCO3-/CO2 also reduced tubule ATP content and stimulated lactate production. Analysis of the dependence of mitochondrial state 3 respiration on HCO3-/CO2 in digitonin-permeabilized tubules traced the metabolic inhibition to limitations in tricarboxylic acid cycle intermediate supply. Energy requirements for HCO3- transport were examined by measuring QO2 in response to acetazolamide, 4,4'-diisothiocyanostilbene-2,2'-disulfonic acid (DIDS) and 4-acetamido-4'-isothiocyanostilbene-2,2'-disulfonic acid (SITS), and the H(+)-adenosinetriphosphatase (H(+)-ATPase) inhibitor bafilomycin A. Acetazolamide had no effect on QO2, whereas DIDS-SITS and bafilomycin A reduced ouabain-insensitive QO2, consistent with inhibition of active proton secretion. DIDS-SITS did not affect ouabain-sensitive respiration, suggesting that HCO3(-)-dependent Na+ reabsorption may not be mediated through the Na(+)-K(+)-ATPase in this preparation.
HCO3-/CO2可通过作为代谢反应的底物直接影响近端小管能量代谢,也可通过HCO3(-)偶联的Na+重吸收和质子分泌对ATP的利用间接影响近端小管能量代谢。在本研究中,通过测量去除HCO3-/CO2及转运抑制剂对兔近端小管悬液中氧消耗(QO2)的影响,来研究HCO3-/CO2的代谢和转运作用。去除培养基中的HCO3-/CO2可抑制哇巴因敏感的、哇巴因不敏感的及解偶联的QO2。与代谢抑制一致,缺乏HCO3-/CO2也会降低小管ATP含量并刺激乳酸生成。在洋地黄皂苷通透的小管中分析线粒体状态3呼吸对HCO3-/CO2的依赖性,发现代谢抑制源于三羧酸循环中间产物供应的限制。通过测量对乙酰唑胺、4,4'-二异硫氰基芪-2,2'-二磺酸(DIDS)、4-乙酰氨基-4'-异硫氰基芪-2,2'-二磺酸(SITS)及H(+)-腺苷三磷酸酶(H(+)-ATPase)抑制剂巴弗洛霉素A的反应所产生的QO2,来研究HCO3-转运的能量需求。乙酰唑胺对QO2无影响,而DIDS-SITS和巴弗洛霉素A降低了哇巴因不敏感的QO2,这与活性质子分泌受到抑制一致。DIDS-SITS不影响哇巴因敏感的呼吸,提示在该制剂中HCO3(-)依赖性Na+重吸收可能不是通过Na(+)-K(+)-ATPase介导的。