Delgado-Reyes Cassandra V, Garrow Timothy A
Department of Food Science and Human Nutrition, University of Illinois, Urbana, USA.
Am J Physiol Regul Integr Comp Physiol. 2005 Jan;288(1):R182-7. doi: 10.1152/ajpregu.00406.2004. Epub 2004 Aug 26.
Betaine-homocysteine S-methyltransferase (BHMT) is the only enzyme known to catabolize betaine. In addition to being a substrate for BHMT, betaine also functions as an osmoprotectant that accumulates in the kidney medulla under conditions of high extracellular osmolarity. The mechanisms that regulate the partitioning of betaine between its use as a methyl donor and its accumulation as an osmoprotectant are not completely understood. The aim of this study was to determine whether BHMT expression is regulated by salt intake. This report shows that guinea pigs express BHMT in the liver, kidney, and pancreas and that the steady-state levels of BHMT mRNA in kidney and liver decrease 68% and 93% in guinea pigs consuming tap water containing high levels of salt compared with animals provided untreated tap water. The animals consuming the salt water also had approximately 50% less BHMT activity in the liver and kidney, and steady-state protein levels decreased approximately 30% in both organs. Pancreatic BHMT activity and protein levels were unaffected by the high salt treatment. The complex mechanisms involved in the downregulation of hepatic and renal BHMT expression in guinea pigs drinking salt water remain to be clarified, but the physiological significance of this downregulation may be to expedite the transport and accumulation of betaine into the kidney medulla under conditions of high extracellular osmolarity.
甜菜碱-同型半胱氨酸S-甲基转移酶(BHMT)是已知唯一可分解代谢甜菜碱的酶。甜菜碱除了作为BHMT的底物外,还作为一种渗透保护剂发挥作用,在细胞外高渗透压条件下会在肾髓质中积累。目前尚未完全了解调节甜菜碱在作为甲基供体的用途与其作为渗透保护剂积累之间分配的机制。本研究的目的是确定BHMT的表达是否受盐摄入量的调节。本报告显示,豚鼠在肝脏、肾脏和胰腺中表达BHMT,与饮用未处理自来水的动物相比,饮用含盐量高的自来水的豚鼠肾脏和肝脏中BHMT mRNA的稳态水平分别降低了68%和93%。饮用盐水的动物肝脏和肾脏中的BHMT活性也降低了约50%,两个器官中的稳态蛋白水平均下降了约30%。胰腺中的BHMT活性和蛋白水平不受高盐处理的影响。饮用盐水的豚鼠肝脏和肾脏中BHMT表达下调所涉及的复杂机制仍有待阐明,但这种下调的生理意义可能是在细胞外高渗透压条件下加速甜菜碱向肾髓质的转运和积累。