鉴定人体肾脏中排泄尿酸盐的三种不同细胞群。

IF 2.6 4区 医学 Q2 PHYSIOLOGY
Yoshihiko M Sakaguchi, Pattama Wiriyasermkul, Masaya Matsubayashi, Masaki Miyasaka, Nau Sakaguchi, Yoshiki Sahara, Minoru Takasato, Kaoru Kinugawa, Kazuma Sugie, Masahiro Eriguchi, Kazuhiko Tsuruya, Hiroki Kuniyasu, Shushi Nagamori, Eiichiro Mori
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引用次数: 0

摘要

在人体中,尿酸是嘌呤代谢的最终产物。尿酸盐从人体肾脏的排泄受到重吸收和分泌的严格调节。至少有 11 个基因被确定为人类肾脏尿酸盐转运体。然而,是否所有肾小管细胞都表达相同的尿酸盐转运体仍不清楚。在这里,我们展示了肾小管细胞分为三个不同的细胞群来处理尿酸盐。对健康人肾脏进行的单细胞分辨率分析表明,并非所有肾小管细胞都表达同一套尿酸盐转运体。只有 32% 的肾小管细胞同时与重吸收和分泌有关,而其余肾小管细胞分别有 5% 和 63% 与重吸收或分泌有关。这些结果为单细胞单位的转运体分子功能和肾脏尿酸盐处理提供了生理学见解。我们的研究结果表明,三种不同的细胞群合作调节人体肾脏的尿酸排泄,我们提出的框架是将视角从分子层面扩大到细胞层面的一个进步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Identification of three distinct cell populations for urate excretion in human kidneys.

In humans, uric acid is an end-product of purine metabolism. Urate excretion from the human kidney is tightly regulated by reabsorption and secretion. At least eleven genes have been identified as human renal urate transporters. However, it remains unclear whether all renal tubular cells express the same set of urate transporters. Here, we show renal tubular cells are divided into three distinct cell populations for urate handling. Analysis of healthy human kidneys at single-cell resolution revealed that not all tubular cells expressed the same set of urate transporters. Only 32% of tubular cells were related to both reabsorption and secretion, while the remaining tubular cells were related to either reabsorption or secretion at 5% and 63%, respectively. These results provide physiological insight into the molecular function of the transporters and renal urate handling on single-cell units. Our findings suggest that three different cell populations cooperate to regulate urate excretion from the human kidney, and our proposed framework is a step forward in broadening the view from the molecular to the cellular level of transport capacity.

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来源期刊
CiteScore
4.40
自引率
4.30%
发文量
27
审稿时长
6-12 weeks
期刊介绍: The Journal of Physiological Sciences publishes peer-reviewed original papers, reviews, short communications, technical notes, and letters to the editor, based on the principles and theories of modern physiology and addressed to the international scientific community. All fields of physiology are covered, encompassing molecular, cellular and systems physiology. The emphasis is on human and vertebrate physiology, but comparative papers are also considered. The process of obtaining results must be ethically sound. Fields covered: Adaptation and environment Autonomic nervous function Biophysics Cell sensors and signaling Central nervous system and brain sciences Endocrinology and metabolism Excitable membranes and neural cell physiology Exercise physiology Gastrointestinal and kidney physiology Heart and circulatory physiology Molecular and cellular physiology Muscle physiology Physiome/systems biology Respiration physiology Senses.
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