AG百家乐大转轮-AG百家乐导航_怎么看百家乐走势_全讯网官网 (中国)·官方网站

Research News

Novel Finding of FOXP3+ Macrophage Which Represses Acute Ischemic Stroke-induced Neural Inflammation by Zhengqi Lu's Group

Source: The Third Affiliated Hospital Written by: Cai Wei, Liu Zhiruo Edited by: Li Tongzhou, Wang Dongmei

Recently, Professor Zhengqi Lu's group from the Department of Neurology, Mental and Neurological Disease Research Center, the Third Affiliated Hospital of Sun Yat-sen University, published the latest original research entitled “FOXP3+ macrophage represses acute ischemic stroke-induced neural inflammation”in Autophagy. The study found that FOXP3+ macrophages suppressed acute ischemic stroke-induced neural inflammation.

Acute ischemic stroke (AIS) is a serious disease with a high disability and mortality rate and is widespread worldwide. Abrupt interruption of brain blood flow in AIS results in neuronal death and the subsequent neural inflammation, which further exacerbates stroke outcomes. Therefore, inflammatory resolution represents a favorable therapeutic strategy against AIS.

Macrophages play a vital role in the pathophysiology of ischemic stroke. Macrophages respond rapidly to cerebral ischemia and numerously infiltrate into stroke lesions. At the same time, macrophages terminate cell-death-induced neural inflammation and accelerate homeostasis restoration in AIS by clearing injured cells or debris, which is also known as efferocytosis. However, the molecular mechanisms of macrophage efferocytosis remain to be explored. Notably, FOXP3 is the master immune repressive transcription factor of regulatory T cell (Treg). Accumulating evidence suggest that FOXP3 expression is not limited to T cells. Expression and molecular function of FOXP3 in macrophages are elusive.

The study investigated the role of FOXP3 in macrophags during AIS with myeloid specific Foxp3 knockout mice (Lyz2Cre-ERT2Foxp3fl/Y). Cerebral ischemia was induced with transient middle cerebral artery occlusion (tMCAO). FOXP3+ macrophages were detected in the peri-infarct region of stroke brain. Single-cell RNA sequencing (scRNAseq) and FOXP3-ChIP revealed that FOXP3+ macrophages were actively involved in the clearance of dead cells and debris in stroke lesions. FOXP3+ macrophages showed enhanced efferocytosis and anti-inflammatory efficiency.

To investigate the mechanisms by which FOXP3 regulates macrophage’s functions in AIS, FOXP3 binding protein in BMDM was isolated with immunoprecipitation (IP), then subjected to liquid chromatography-mass spectrometry (LC-MS) analysis and the subsequent GO-BP projection. It was found that, in resting BMDM, Foxp3 was stably and sparingly expressed, but continuously degraded through autophagy. LC3-associated phagocytosis (LAP) was initiated in macrophages after stroke, which competed autophagic machineries that were responsible for FOXP3 protein degradation. FOXP3 protein was thus rapidly accumulated and translocated into the nucleus to promote phagocytic activities and subsequent cargo digestion in macrophages, which terminated the dead cells induced immune responses and contributed to inflammatory resolution after ischemic stroke. These evidence suggest that FOXP3 signalling is subtly and exquisitely controlled by a complex molecular network which rapidly fine-tune macrophage activity in AIS.

In conclusion, the study elucidates that FOXP3+ macrophages are implicated in post-stroke neural inflammation. FOXP3 positively regulates phagocytosis and the inflammatory resolving functions of macrophages. Rapid activation of FOXP3 in macrophages is associated with LAP. The research team proposed that FOXP3 could be a viable molecular target for cultivating efferocytosis and inflammatory resolution of macrophages in the ischemic brain, which provides a new theoretical basis and intervention strategy to mitigate brain injury and promote stroke recovery.

Corresponding authors of the study are Prof. Zhengqi Lu (Mental and Neurological Disease Research Center, the Third Affiliated Hospital of Sun Yat-sen University), Prof. Yan Lu (Center of Clinical Immunology, the Third Affiliated Hospital of Sun Yat-sen University) and professor Quentin Liu (Sun Yat-sen University Cancer Center). First authors include Prof. Wei Cai and PhD candidate Mengyan Hu (Mental and Neurological Disease Research Center, the Third Affiliated Hospital of Sun Yat-sen University).


The role of FOXP3 in macrophage during AIS


Link to the paper: https://doi.org/10.1080/15548627.2022.2116833


最好的百家乐博彩网站| 电脑赌百家乐官网可靠吗| 百家乐沙| 百家乐官网最好的平台是哪个| 帝王百家乐官网的玩法技巧和规则| 皇冠网平台| 百家乐官网发牌靴发牌盒| 粤港澳百家乐娱乐| 3d大赢家| 威尼斯人娱乐网代理| 百家乐官网攻略投注法| 怎样打百家乐官网的玩法技巧和规则| 百家乐博牌规例| 百家乐桌布橡胶| 盈乐博娱乐城| 如何打百家乐的玩法技巧和规则| 百家乐官网有真假宝单吗| 赌百家乐赢的奥妙| sz新全讯网网址112| 玩百家乐官网优博娱乐城| 运城百家乐的玩法技巧和规则| 百家乐官网路单下注| 百家乐职业赌徒的解密| 百家乐官网数据程序| 百家乐博彩网址| 百家乐官网平注7s88| 百家乐官网变牌桌| 大发888xp缺少casino| 大佬百家乐官网的玩法技巧和规则| 大发888设置| 八卦24山| 百家乐官网桌| 澳门玩大小| 百家乐打水论坛| 百家乐官网讯特| 尊龙国际网址| 百家乐公式软件| 百家乐官网双峰县| 百家乐麻将筹码币| 澳门百家乐官网官网网站| 百家乐官网能作弊吗|