Kupffer cells are essential for platelet-mediated thrombopoietin generation in the liver

IF 9.1 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Danielle Karakas, June Li, Wenjing Ma, Xun Grace Wu, Christopher J. Khoury, Mina Masoud, Brock Hoard, Yuning Jay Liu, Guangheng Zhu, Junmei Chen, Martha Sim, Chuanbin Shen, José A. López, Sonya A. MacParland, Walter H. A. Kahr, Heyu Ni
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Abstract

Thrombopoietin (TPO), predominantly produced by the liver, is the key regulator for platelet production and the hematopoietic stem cell niche. Our earlier report demonstrated that platelet GPIbα is required for hepatocellular TPO generation, which is the major resource of TPO in the blood circulation. However, how hepatocytes physically contact circulating sinusoidal platelets across the liver endothelium for this process is unknown. Kupffer cells reside in contact with both sinusoidal blood and underlying hepatocytes, and mediate senescent platelet clearance, but their role in TPO regulation has never been explored. Here, we found Kupffer cell depletion via either clodronate liposomes or specific transgenic models abrogated circulating TPO. Kupffer cell depletion also prevented TPO level increase in GPIbα-deficient mice following wild-type (GPIbα + ) platelet transfusion, signifying an interdependent mechanism for TPO regulation. Mice treated with arsenite had significantly decreased liver endothelial fenestrations and hepatocyte sinusoidal protrusions as well as TPO levels. This effect was exacerbated by Kupffer cell depletion, and Kupffer cells were identified to enhance liver endothelial fenestrations. Electron microscopy and immunofluorescence analysis of the liver revealed platelets arrested on Kupffer cell surface were in contact with hepatocyte protrusions. Thus, we elucidated that Kupffer cells promote endothelial fenestrae and hepatocyte protrusions, accumulate circulating platelets, and facilitate cellular interactions between hepatocytes and platelets, which drive TPO generation. This connection between platelet clearance and thrombopoiesis should have broad implications for hematology and pathologies such as Bernard–Soulier syndrome, thrombocytopenias, as well as liver diseases.
库普弗细胞是肝脏血小板介导的血小板生成素生成所必需的
血小板生成素(TPO)主要由肝脏产生,是血小板生成和造血干细胞生态位的关键调节因子。我们之前的报告表明,血小板GPIbα是肝细胞TPO生成所必需的,而肝细胞TPO是血液循环中TPO的主要来源。然而,在这一过程中,肝细胞如何通过肝内皮与循环正弦血小板物理接触尚不清楚。Kupffer细胞与窦状血和肝细胞接触,介导衰老血小板清除,但其在TPO调节中的作用从未被探索过。在这里,我们发现通过氯膦酸脂质体或特定的转基因模型库普弗细胞耗竭可以消除循环TPO。Kupffer细胞耗尽也阻止了野生型(GPIbα +)血小板输注后GPIbα-缺陷小鼠TPO水平的升高,这表明TPO调节的相互依赖机制。亚砷酸盐处理小鼠肝内皮开孔、肝细胞窦突及TPO水平均显著降低。Kupffer细胞耗竭加剧了这种效应,Kupffer细胞被鉴定为增强肝内皮开孔。肝脏的电镜和免疫荧光分析显示,停在库普弗细胞表面的血小板与肝细胞突起接触。因此,我们阐明了Kupffer细胞促进内皮细胞和肝细胞突出,积累循环血小板,促进肝细胞和血小板之间的细胞相互作用,从而驱动TPO的产生。血小板清除和血小板生成之间的这种联系应该对血液学和病理(如Bernard-Soulier综合征、血小板减少症以及肝脏疾病)具有广泛的意义。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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