Publications by authors named "Pin-Lan Li"

Nonalcoholic fatty liver disease (NAFLD) encompasses a spectrum of chronic liver conditions, ranging from simple steatosis to nonalcoholic steatohepatitis, which may progress to fibrosis/cirrhosis. Here, the GSE163211 data set was analyzed, and Asah1 (encoding acid ceramidase) was identified as a crucial lysosomal gene that positively correlated with NAFLD stages in obese patients. To evaluate the role of Asah1 in the progression of NAFLD, Asah1/Alb mice (hepatocyte-specific deletion of Asah1) and Asah1 floxed (Asah1/wild-type) mice were fed with either a normal diet or a high-fat, high-cholesterol paigen diet (PD) for 20 weeks.

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Background: Accumulating evidence indicates that coronary microvascular dysfunction (CMD) caused by hypercholesterolemia can lead to myocardial ischemia, with or without obstructive atherosclerotic coronary artery disease. However, the molecular pathways associated with compromised coronary microvascular function before the development of myocardial ischemic injury remain poorly defined. In this study, we investigated the effects of hypercholesterolemia on the function and integrity of the coronary microcirculation in mice and the underlying mechanisms.

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Fatty acid amide hydrolase (FAAH) serves as the primary enzyme responsible for degrading the endocannabinoid anandamide (AEA). Inhibition of FAAH, either through pharmacological means or genetic manipulation, can effectively reduce inflammation in various organs, including the brain, colon, heart, and kidneys. Infusion of a FAAH inhibitor into the kidney medulla has been shown to induce diuretic and natriuretic effects.

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Accumulating evidence indicates that coronary microvascular dysfunction (CMD) caused by hypercholesterolemia can lead to myocardial ischemia, with or without obstructive atherosclerotic coronary artery disease (CAD). However, the molecular pathways associated with compromised coronary microvascular function prior to the development of myocardial ischemic injury remain poorly defined. In this study, we investigated the effects of hypercholesterolemia on the function and integrity of the coronary microcirculation in mice and the underlying mechanisms.

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Acid sphingomyelinase (ASM) has been reported to increase tissue ceramide and thereby mediate hyperhomocysteinemia (hHcy)-induced glomerular nucleotide-binding oligomerization domain-like receptor containing pyrin domain 3 (NLRP3) inflammasome activation, inflammation, and sclerosis. In the present study, we tested whether somatic podocyte-specific silencing of gene (mouse ASM gene code) attenuates hHcy-induced NLRP3 inflammasome activation and associated extracellular vesicle (EV) release in podocytes and thereby suppresses glomerular inflammatory response and injury. In vivo, somatic podocyte-specific Smpd1 gene silencing almost blocked hHcy-induced glomerular NLRP3 inflammasome activation in Podo (podocyte-specific expression of cre recombinase) mice compared with control littermates.

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The activation of nucleotide-binding oligomerization domain-like receptor containing pyrin domain 3 (NLRP3) inflammasome has been reported to importantly contribute to glomerular inflammation and injury under different pathological conditions such as obesity. However, the mechanism mediating NLRP3 inflammasome activation in podocytes and subsequent glomerular injury remains poorly understood. Given that the ceramide signaling pathway has been reported to be implicated in obesity-related glomerulopathy (ORG), the present study was designed to test whether the ceramide-producing enzyme, acid sphingomyelinase (ASM), determines NLRP3 inflammasome activation and inflammatory exosome release in podocytes leading to glomerular inflammation and injury during ORG.

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Background: Our previous studies showed that renal medullary sphingosine-1-phosphate receptor 1 (S1PR1) mediated sodium excretion, high salt intake increased S1PR1 level, deoxycorticosterone acetate (DOCA) blocked high salt-induced S1PR1 in the renal medulla, and that conditional knockout of S1PR1 in the collecting duct aggravated DOCA-salt hypertension. The present study tested the hypothesis that overexpression of S1PR1 transgene in the renal medulla attenuates the sodium retention and hypertension in DOCA-salt mouse model.

Methods: Male C57BL/6J mice received renal medullary transfection of control or S1PR1-expressing plasmids and then DOCA-salt treatment.

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To study the mechanism by which nonalcoholic fatty liver disease (NAFLD) contributes to vascular endothelial Nod-like receptor pyrin domain 3 (NLRP3) inflammasome activation and neointima hyperplasia, NAFLD was established in high-fat diet (HFD)-treated Asah1/Alb (liver-specific deletion of the acid ceramidase gene Asah1) mice. Compared with Asah1 flox [Asah1/wild type (WT)] and wild-type (WT/WT) mice, Asah1/Alb mice exhibited significantly enhanced ceramide levels and lipid deposition on HFD in the liver. Moreover, Asah1/Alb mice showed enhanced expression of extracellular vesicle (EV) markers, CD63 and annexin II, but attenuated lysosome-multivesicular body fusion.

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Lysosomal acid ceramidase (AC) has been reported to determine multivesicular body (MVB) fate and exosome secretion in different mammalian cells including coronary arterial endothelial cells (CAECs). However, this AC-mediated regulation of exosome release from CAECs and associated underlying mechanism remain poorly understood. In the present study, we hypothesized that AC controls lysosomal Ca release through TRPML1 channel to regulate exosome release in murine CAECs.

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Podocytopathy and associated nephrotic syndrome have been reported in a mouse strain (Asah1/Podo) with a podocyte-specific deletion of α subunit (the main catalytic subunit) of acid ceramidase (Ac). However, the pathogenesis of podocytopathy in these mice remains unclear. The present study tested whether Ac deficiency impairs autophagic flux in podocytes through blockade of transient receptor potential mucolipin 1 (TRPML1) channel as a potential pathogenic mechanism of podocytopathy in Asah1/Podo mice.

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The NOD-like receptor pyrin domain 3 (NLRP3) inflammasome is activated during atherogenesis, but how this occurs is unclear. Here, we explored the mechanisms activating and regulating NLRP3 inflammasomes via the acid sphingomyelinase (ASM)-ceramide signaling pathway. As a neointima formation model, partial left carotid ligations were performed on endothelial cell (EC)-specific ASM transgene mice (Smpd1/EC) and their control littermates (Smpd1/WT and WT/WT) fed on the Western diet (WD).

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The rapid fall in blood pressure following unclipping of the stenotic renal artery in the Goldblatt two-kidney one-clip (2K1C) model of renovascular hypertension is proposed to be due to release of renomedullary vasodepressor lipids, but the mechanism has remained unclear. In this study, we hypothesized that the hypotensive response to unclipping is mediated by exosomes released from the renal medulla. In male C57BL6/J mice made hypertensive by the 2K1C surgery, unclipping of the renal artery after 10 days decreased mean arterial pressure (MAP) by 23 mmHg one hr after unclipping.

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Recent studies have indicated that instant cell membrane resealing (ICMR) controls the activation of NOD-like receptor pyrin domain containing 3 (Nlrp3) inflammasomes in endothelial cells, thereby initiating and promoting vascular inflammation. It remains unknown whether this impaired ICMR occurs under diabetic condition or hyperglycemia contributing to endothelial dysfunction leading to vascular inflammation, a hallmark of diabetic vascular injury. The present study aims to examine whether ICMR occurs during in control and diabetic mice and to explore related molecular mechanisms associated with acid sphingomyelinase (ASM)-mediated ceramide production.

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Cisplatin is an established chemotherapeutic drug for treatment of solid-organ cancers and is the primary drug used in the treatment of head and neck cancer; however, cisplatin-induced nephrotoxicity largely limits its clinical use. Inhibition of sphingosine kinase 2 (SphK2) has been demonstrated to alleviate various kidney diseases. Therefore, we hypothesized that inhibition of SphK2 could also protect against cisplatin-induced nephrotoxicity.

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Lysosomal ion channels mediate ion flux from lysosomes and regulate membrane potential across the lysosomal membrane, which are essential for lysosome biogenesis, nutrient sensing, lysosome trafficking, lysosome enzyme activity, and cell membrane repair. As a cation channel, the transient receptor potential mucolipin 1 (TRPML1) channel is mainly expressed on lysosomes and late endosomes. Recently, the normal function of TRPML1 channels has been demonstrated to be important for the maintenance of cardiovascular and renal glomerular homeostasis and thereby involved in the pathogenesis of some cardiovascular and kidney diseases.

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Nucleotide-binding oligomerization domain-like receptor containing pyrin domain 3 (NLRP3) inflammasome activation in podocytes is reportedly associated with enhanced release of exosomes containing NLRP3 inflammasome products from these cells during hyperhomocysteinemia (hHcy). This study examined the possible role of increased exosome secretion during podocyte NLRP3 inflammasome activation in the glomerular inflammatory response. Whether exosome biogenesis and lysosome function are involved in the regulation of exosome release from podocytes during hHcy in mice and upon stimulation of homocysteine (Hcy) in podocytes was tested.

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Background: Exosomes have been reported to mediate activation of the inflammatory response by secretion of inflammasome products such as IL-1β or IL-18 and that changes in exosomes production or secretion may be a therapeutic target for treatment of a variety of different chronic diseases. The present study tested the hypothesis that exosome-mediated release of NLRP3 inflammasome products instigates the inflammatory response in the lung during emphysema, a type of chronic obstructive pulmonary disease (COPD) and that electroacupuncture (EA) may attenuate emphysema by inhibition of NLRP3 inflammasome activation and consequent inflammation.

Methods: The COPD mice model was developed by injecting porcine pancreatic elastase (PPE) via puncture tracheotomy and instillation.

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Acid ceramidase (murine gene code: Asah1) (50 kDa) belongs to N-terminal nucleophile hydrolase family. This enzyme is located in the lysosome, which mediates conversion of ceramide (CER) into sphingosine and free fatty acids at acidic pH. CER plays an important role in intracellular sphingolipid metabolism and its increase causes inflammation.

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Background: We have previously shown that high salt stimulates the expression of miR-429 in the renal medulla, which induces mRNA decay of HIF prolyl-hydroxylase 2 (PHD2), an enzyme to promote the degradation of hypoxia-inducible factor (HIF)-1α, and increases the HIF-1α-mediated activation of antihypertensive genes in the renal medulla, consequently promoting extra sodium excretion. Our preliminary results showed that high salt-induced increase of miR-429 was not observed in Dahl S rats. This present study determined whether correction of this impairment in miR-429 would reduce PHD2 levels, increase antihypertensive gene expression in the renal medulla and attenuate salt-sensitive hypertension in Dahl S rats.

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The nucleotide-binding oligomerization domain-like receptor containing pyrin domain 3 (NLRP3) inflammasome in podocytes has been implicated in the initiation of glomerular inflammation during hyperhomocysteinemia (hHcy). However, the mechanism by which NLRP3 inflammasome products are released from podocytes remains unknown. The present study tested whether exosome secretion from podocytes is enhanced by NADPH oxidase-produced reactive oxygen species (ROS), which may serve as a pathogenic mechanism mediating the release of inflammatory cytokines produced by the NLRP3 inflammasome in podocytes after Hcy stimulation.

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The lysosome is a single ubiquitous membrane-enclosed intracellular organelle with an acidic pH present in all eukaryotic cells, which contains large numbers of hydrolytic enzymes with their maximal enzymatic activity at a low pH (pH ≤ 5) such as proteases, nucleases, and phosphatases that are able to degrade extracellular and intracellular components. It is well known that lysosomes act as a center for degradation and recycling of large numbers of macromolecules delivered by endocytosis, phagocytosis, and autophagy. Lysosomes are recognized as key organelles for cellular clearance and are involved in many cellular processes and maintain cellular homeostasis.

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Cyclic nucleotide phosphodiesterases (PDEs) are superfamily of enzymes that regulate the spatial and temporal relationship of second messenger signaling in the cellular system. Among the 11 different families of PDEs, phosphodiesterase 1 (PDE1) sub-family of enzymes hydrolyze both 3',5'-cyclic adenosine monophosphate (cAMP) and 3',5'-cyclic guanosine monophosphate (cGMP) in a mutually competitive manner. The catalytic activity of PDE1 is stimulated by their binding to Ca/calmodulin (CaM), resulting in the integration of Ca and cyclic nucleotide-mediated signaling in various diseases.

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The nucleotide-binding oligomerization domain-like receptor containing pyrin domain 3 (NLRP3) inflammasome has been implicated in podocyte injury and glomerular sclerosis in response to hyperhomocysteinemia (hHcy). However, it remains unknown how the products of NLRP3 inflammasome in cytoplasm are secreted out of podocytes. In the present study, we tested whether exosome release serves as a critical mechanism to mediate the action of NLRP3 inflammasome activation in hHcy-induced glomerular injury.

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Podocytes play a vital role in the pathogenesis of nephrotic syndrome (NS), which is clinically characterized by heavy proteinuria, hypoalbuminemia, hyperlipidemia, and peripheral edema. The pathogenesis of NS has evolved through several hypotheses ranging from immune dysregulation theory and increased glomerular permeability theory to the current concept of podocytopathy. Podocytopathy is characterized by dysfunction or depletion of podocytes, which may be caused by unknown permeability factor, genetic disorders, drugs, infections, systemic disorders, and hyperfiltration.

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Guidelines for the use and interpretation of assays for monitoring autophagy (4th edition).
Daniel J Klionsky Amal Kamal Abdel-Aziz Sara Abdelfatah Mahmoud Abdellatif Asghar Abdoli Hagai Abeliovich Khosrow Adeli Galila Agam Ulises Ahumada-Castro Lina Al-Akra Moulay A Alaoui-Jamali Muhammad Ali M Abdul Alim Al-Bari Saeb Aliwaini Javad Alizadeh Alicia Alonso Élida M C Álvarez Sabrina Angelini Lionel Apetoh Dalia Maria Lucia Asaro Alicia K Au Laure Aurelian Riccardo Autelli Laura Avagliano Célia Alexandra Aveleira Etienne E Baulieu Melissa Belló Pérez Jackeline Soares de Oliveira Beltran Julien Bensalem Laura Berliocchi Clarisse Berlioz-Torrent Amélie Bernard Lionel Berthoux Cagri G Besirli Shalmoli Bhattacharyya Xiaolin Bi Emilio Boada-Romero Kathleen Boesze-Battaglia Philippe Boeuf Laura Bonfili Cecilia Bucci Laura Elisa Buitrago-Molina Juliane C Campos Olivier Camuzard Michele Caraglia Gillian Carleton Oliana Carnevali Julian M Carosi Alice Carrier Magali Casanova Chiara Cassioli Eliseo F Castillo Federica Cavaliere Gabriella Cavallini Liam L Chen Lin Chen Mingliang Chen Roberto Chiarelli Nathalia Chica Kamalika Roy Choudhury Yuen-Li Chung Valentina Cianfanelli Emilio Clementi Eliana M Coccia Miodrag Čolić Mark O Collins Antonella Consiglio Paola Costelli Marcello D'Amelio Hormos Salimi Dafsari Maria Daglia April L Darling Oliver Daumke Karolien De Bosscher Francesca De Felice Angelo De Milito Claudio De Virgilio Elizabeth Delorme-Axford Melvin L DePamphilis Olivier Devuyst Manlio Di Cristina Gianni M Di Guglielmo George Diallinas Massimo Donadelli Liat Drucker Ailian Du Li-Lin Du Bilikere S Dwarakanath Aristides G Eliopoulos María M Elizalde Philip M Elks Brooke M Emerling Eeva-Liisa Eskelinen W Douglas Fairlie Manolis Fanto Gholamreza Fazeli Lifeng Feng Alisdair R Fernie Julio C B Ferreira Nicoletta Filigheddu Eduardo Filippi-Chiela Steven J Fliesler Oliver Florey Tullio Florio Antonella Forlino Lisa B Frankel Leopold F Fröhlich Lidia Gaffke Maria F Galindo Liang Ge Cecilia Gelfi Sandy Giuliano Cecilia Giulivi Julien Giustiniani Alexander 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Lilly Hyunjung J Lim Thania R R Lima Federica Limana Chao Lin Chih-Wen Lin Dar-Shong Lin Fu-Cheng Lin Jiandie D Lin Kurt M Lin Kwang-Huei Lin Liang-Tzung Lin Pei-Hui Lin Qiong Lin Shaofeng Lin Su-Ju Lin Wenyu Lin Xueying Lin Yao-Xin Lin Yee-Shin Lin Rafael Linden Paula Lindner Shuo-Chien Ling Paul Lingor Amelia K Linnemann Yih-Cherng Liou Marta M Lipinski Saška Lipovšek Vitor A Lira Natalia Lisiak Paloma B Liton Chao Liu Ching-Hsuan Liu Chun-Feng Liu Cui Hua Liu Fang Liu Hao Liu Hsiao-Sheng Liu Hua-Feng Liu Huifang Liu Jia Liu Jing Liu Julia Liu Leyuan Liu Longhua Liu Meilian Liu Qin Liu Wei Liu Wende Liu Xiao-Hong Liu Xiaodong Liu Xingguo Liu Xu Liu Xuedong Liu Yanfen Liu Yang Liu Yang Liu Yueyang Liu Yule Liu J Andrew Livingston Gerard Lizard Jose M Lizcano Alicia Llorente Julia A Loos Julian J Lum Liany Luna-Dulcey Honglin Luo Xinliang Ma Julio Madrigal-Matute Emiliano Maiani Fayaz Malik Karthik Mallilankaraman Alina Maloyan Masoud H Manjili Sara Marinelli Oliviero Marinelli Celine Masclaux-Daubresse Laura Masuelli Anatoliy I Masyuk Caroline Mauvezin Gianluigi Mazzoccoli Joseph R Mazzulli BethAnn McLaughlin Fionn McLoughlin Thomas G McWilliams Alicia Meléndez Ana Cecilia Mestre Maurizio Molinari Faustino Mollinedo Elena Morelli Eugenia Morselli Elisa Motori Andrea Felinto Moura Gennaro Napolitano Melissa Nassif Phillip T Newton Francesco Nicoli Annalisa Nobili Mary P O'Sullivan Timothy E O'Sullivan Sara Oliván Jorge M A Oliveira Lifeng Pan Wenliang Pan Elisa Panzarini Francesca Pentimalli Lilian C Pereira Ana B Perez-Oliva Jennifer A Philips Alicia M Pickrell Philippe Pierre Karolina Pierzynowska Felipe X Pimentel-Muiños Karolina Pircs Eliana Portilla-Fernandez Malia B Potts Vasilis J Promponas Luigi Puglielli Thomas Pulinilkunnil Julien Puyal Felix Randow Jan H Reiling Philip Rosenstiel Avnika Ashok Ruparelia Maria Cecilia Sanchez K Matthew Scaglione Liliana Schaefer Oliver Schmidt Filippo Scialo Iban Seiliez Lisa M Sharkey Dipali Sharma Weili Shen Santiago Signorelli Lalit P Singh Soraya S Smaili Jason A Somarelli Clint A Stalnecker Ling-Yan Su Katalin Susztak Davide Tampellini Daolin Tang Lipi Thukral Ling Tian Liliana Torres-López Alicia Torriglia Aslihan Ugun-Klusek Holm H Uhlig Elisabet Uribe-Carretero Helin Vakifahmetoglu-Norberg Silvia Vega-Rubin-de-Celis Tim Vervliet Otilia V Vieira Olivier Vincent Ilio Vitale Lianrong Wang Liming Wang Oliver H Weiergräber J Lindsay Whitton Brett Williams Robin S B Williams Roger L Williams Peter R Williamson William K K Wu Lixin Xia Mingliang Xiang Zhonglin Xie Liang Xu Ling Yang Liu Yang Li Yu Ling-Qing Yuan Shilin Yuan Vanessa O Zambelli Konstantinos S Zarbalis Scott O Zeitlin Jialiu Zeng Lixuan Zhan Hanlin Zhang Hui-Ling Zhang Kalin Y B Zhang Lin Zhang Lisheng Zhang Zili Zhang Yongliang Zhao Ling Zheng Kailiang Zhou Binglin Zhu Changlian Zhu X Charlie Dong Zuguo Li Yong Lin Christina L Stallings

Autophagy

January 2021

Article Synopsis
  • In 2008, guidelines were established for researching autophagy, which has since gained significant interest and new technologies, necessitating regular updates to monitoring methods across various organisms.
  • The new guidelines emphasize selecting appropriate techniques to evaluate autophagy while noting that no single method suits all situations; thus, a combination of methods is encouraged.
  • The document highlights that key proteins involved in autophagy also impact other cellular processes, suggesting genetic studies should focus on multiple autophagy-related genes to fully understand these pathways.
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