keyword
https://read.qxmd.com/read/38688425/melatonin-prevents-pulmonary-fibrosis-caused-by-pm-2-5-exposure-by-targeting-epithelial-mesenchymal-transition
#1
JOURNAL ARTICLE
Po-Chun Chen, Ming-Hong Yen, Sheng-Yen Hsiao, Wan-Chen Kao, Mei-Ting Wang, Pei-Chen Chiou, Chia-Chia Chao
Pulmonary fibrosis is a lung disorder characterized by the accumulation of abnormal extracellular matrix, scar tissue formation, and tissue stiffness. Type II alveolar epithelial cells (AEII) play a critical role in repairing lung tissue after injury, and repeated injury to these cells is a key factor in the development of pulmonary fibrosis. Chronic exposure to PM2.5 , a type of air pollution, has been shown to increase the incidence and severity of pulmonary fibrosis by enhancing the activation of EMT in lung epithelial cells...
April 28, 2024: Toxicology and Applied Pharmacology
https://read.qxmd.com/read/38677537/lung-fibroblast-derived-extracellular-vesicles-and-soluble-factors-alleviate-elastase-induced-lung-injury
#2
JOURNAL ARTICLE
Luke van der Koog, Myrthe J Boerrigter, Iris C Gorter, Reinoud Gosens, Anika Nagelkerke
One of the main pathological features of chronic obstructive pulmonary disease (COPD) is the loss of functional alveolar tissue as a consequence of impaired regenerative capacities (emphysema). Recent research suggests that the secretome from mesenchymal cells, particularly extracellular vesicles (EVs), may possess regenerative properties beneficial for lung repair. However, the regenerative potential of the soluble factors (SFs) within the secretome remains largely unexplored in COPD. To this extent, we purified EVs and SFs secreted by lung fibroblasts to generate EV-enriched and SF-enriched fractions, and evaluated their effects on elastase-induced lung injury in both precision-cut lung slices (PCLS) and a mouse model...
April 25, 2024: European Journal of Pharmacology
https://read.qxmd.com/read/38673850/the-experimental-and-in-silico-based-evaluation-of-nrf2-modulators-sulforaphane-and-brusatol-on-the-transcriptome-of-immortalized-bovine-mammary-alveolar-cells
#3
JOURNAL ARTICLE
Hunter R Ford, Massimo Bionaz
Changes during the production cycle of dairy cattle can leave these animals susceptible to oxidative stress and reduced antioxidant health. In particular, the periparturient period, when dairy cows must rapidly adapt to the sudden metabolic demands of lactation, is a period when the production of damaging free radicals can overwhelm the natural antioxidant systems, potentially leading to tissue damage and reduced milk production. Central to the protection against free radical damage and antioxidant defense is the transcription factor NRF2, which activates an array of genes associated with antioxidant functions and cell survival...
April 12, 2024: International Journal of Molecular Sciences
https://read.qxmd.com/read/38657143/lipid-deficiency-contributes-to-impaired-alveolar-progenitor-cell-function-in-aging-and-idiopathic-pulmonary-fibrosis
#4
JOURNAL ARTICLE
Jiurong Liang, Guanling Huang, Xue Liu, Xuexi Zhang, Anas Rabata, Ningshan Liu, Kai Fang, Forough Taghavifar, Kristy Dai, Vrishika Kulur, Dianhua Jiang, Paul W Noble
Idiopathic pulmonary fibrosis (IPF) is an aging-associated interstitial lung disease resulting from repeated epithelial injury and inadequate epithelial repair. Alveolar type II cells (AEC2) are progenitor cells that maintain epithelial homeostasis and repair the lung after injury. In the current study, we assessed lipid metabolism in AEC2s from human lungs of IPF patients and healthy donors, as well as AEC2s from bleomycin-injured young and old mice. Through single cell RNA sequencing (scRNA-seq), we observed that lipid metabolism-related genes were downregulated in IPF AEC2s and bleomycin-injured mouse AEC2s...
April 24, 2024: American Journal of Respiratory Cell and Molecular Biology
https://read.qxmd.com/read/38651330/exploring-therapeutic-targets-for-molecular-therapy-of-idiopathic-pulmonary-fibrosis
#5
REVIEW
Yue Li, Congshan Jiang, Wenhua Zhu, Shemin Lu, Hongchuan Yu, Liesu Meng
Idiopathic pulmonary fibrosis is a chronic and progressive interstitial lung disease with a poor prognosis. Idiopathic pulmonary fibrosis is characterized by repeated alveolar epithelial damage leading to abnormal repair. The intercellular microenvironment is disturbed, leading to continuous activation of fibroblasts and myofibroblasts, deposition of extracellular matrix, and ultimately fibrosis. Moreover, pulmonary fibrosis was also found as a COVID-19 complication. Currently, two drugs, pirfenidone and nintedanib, are approved for clinical therapy worldwide...
2024: Science Progress
https://read.qxmd.com/read/38650667/potential-therapeutic-effects-and-nano-based-delivery-systems-of-mesenchymal-stem-cells-and-their-isolated-exosomes-to-alleviate-acute-respiratory-distress-syndrome-caused-by-covid-19
#6
REVIEW
Mohsen Ghiasi, Peyman Kheirandish Zarandi, Abdolreza Dayani, Ali Salimi, Ehsan Shokri
The severe respiratory effects of the coronavirus disease 2019 (COVID-19) pandemic have necessitated the immediate development of novel treatments. The majority of COVID-19-related fatalities are due to acute respiratory distress syndrome (ARDS). Consequently, this virus causes massive and aberrant inflammatory conditions, which must be promptly managed. Severe respiratory disorders, notably ARDS and acute lung injury (ALI), may be treated safely and effectively using cell-based treatments, mostly employing mesenchymal stem cells (MSCs)...
December 2024: Regenerative Therapy
https://read.qxmd.com/read/38649802/bleomycin-induces-senescence-and-repression-of-dna-repair-via-downregulation-of-rad51
#7
JOURNAL ARTICLE
Fuqiang Chen, Wenna Zhao, Chenghong Du, Zihan Chen, Jie Du, Meijuan Zhou
BACKGROUND: Bleomycin, a potent antitumor agent, is limited in clinical use due to the potential for fatal pulmonary toxicity. The accelerated DNA damage and senescence in alveolar epithelial cells (AECs) is considered a key factor in the development of lung pathology. Understanding the mechanisms for bleomycin-induced lung injury is crucial for mitigating its adverse effects. METHODS: Human lung epithelial (A549) cells were exposed to bleomycin and subsequently assessed for cellular senescence, DNA damage, and double-strand break (DSB) repair...
April 22, 2024: Molecular Medicine
https://read.qxmd.com/read/38648494/repair-and-regeneration-of-the-alveolar-epithelium-in-lung-injury
#8
REVIEW
Yaxuan Wang, Lan Wang, Shuaichen Ma, Lianhui Cheng, Guoying Yu
Considerable progress has been made in understanding the function of alveolar epithelial cells in a quiescent state and regeneration mechanism after lung injury. Lung injury occurs commonly from severe viral and bacterial infections, inhalation lung injury, and indirect injury sepsis. A series of pathological mechanisms caused by excessive injury, such as apoptosis, autophagy, senescence, and ferroptosis, have been studied. Recovery from lung injury requires the integrity of the alveolar epithelial cell barrier and the realization of gas exchange function...
April 30, 2024: FASEB Journal: Official Publication of the Federation of American Societies for Experimental Biology
https://read.qxmd.com/read/38635761/transcriptomics-analysis-identifies-the-decline-in-the-at2-stem-cell-niches-in-aged-human-lungs
#9
JOURNAL ARTICLE
Xue Liu, Xuexi Zhang, Changfu Yao, Jiurong Liang, Paul W Noble, Dianhua Jiang
Aging poses a global public health challenge, which is linked to the rise of age-related lung diseases. The precise understanding of the molecular and genetic changes in the aging lung that elevate the risk of acute and chronic lung diseases remains incomplete. Alveolar type II (AT2) cells are stem cells that maintain epithelial homeostasis and repair the lung after injury. AT2 progenitor function decreases with aging. The maintenance of AT2 function requires niche support from other cell types, but little has been done to characterize alveolar alterations with aging in the AT2 niche...
April 18, 2024: American Journal of Respiratory Cell and Molecular Biology
https://read.qxmd.com/read/38613355/pyrroloquinoline-quinone-ameliorates-pm2-5-induced-pulmonary-fibrosis-through-targeting-epithelial-mesenchymal-transition
#10
JOURNAL ARTICLE
Chia-Chia Chao, Sheng-Yen Hsiao, Wan-Chen Kao, Pei-Chen Chiou, Chieh-Chen Huang, Mei-Ting Wang, Po-Chun Chen
Pulmonary fibrosis is a lung disorder affecting the lungs that involves the overexpressed extracellular matrix, scarring and stiffening of tissue. The repair of lung tissue after injury relies heavily on Type II alveolar epithelial cells (AEII), and repeated damage to these cells is a crucial factor in the development of pulmonary fibrosis. Studies have demonstrated that chronic exposure to PM2.5, a form of air pollution, leads to an increase in the incidence and severity of pulmonary fibrosis by stimulation of epithelial-mesenchymal transition (EMT) in lung epithelial cells...
April 2024: Journal of Cellular and Molecular Medicine
https://read.qxmd.com/read/38607074/unlocking-the-future-pluripotent-stem-cell-based-lung-repair
#11
REVIEW
Tobias Goecke, Fabio Ius, Arjang Ruhparwar, Ulrich Martin
The human respiratory system is susceptible to a variety of diseases, ranging from chronic obstructive pulmonary disease (COPD) and pulmonary fibrosis to acute respiratory distress syndrome (ARDS). Today, lung diseases represent one of the major challenges to the health care sector and represent one of the leading causes of death worldwide. Current treatment options often focus on managing symptoms rather than addressing the underlying cause of the disease. The limitations of conventional therapies highlight the urgent clinical need for innovative solutions capable of repairing damaged lung tissue at a fundamental level...
April 5, 2024: Cells
https://read.qxmd.com/read/38598345/pharmacological-expansion-of-type-2-alveolar-epithelial-cells-promotes-regenerative-lower-airway-repair
#12
JOURNAL ARTICLE
Sida Shao, Nan Zhang, Gregory P Specht, Shaochen You, Lirui Song, Qiangwei Fu, David Huang, Hengyao You, Jian Shu, Alain Domissy, Shuangwei Li, Van Nguyen-Tran, Sean B Joseph, Arnab K Chatterjee, Jeffrey Jian Chen, Peter G Schultz, Michael J Bollong
Type 2 alveolar epithelial cells (AEC2s) are stem cells in the adult lung that contribute to lower airway repair. Agents that promote the selective expansion of these cells might stimulate regeneration of the compromised alveolar epithelium, an etiology-defining event in several pulmonary diseases. From a high-content imaging screen of the drug repurposing library ReFRAME, we identified that dipeptidyl peptidase 4 (DPP4) inhibitors, widely used type 2 diabetes medications, selectively expand AEC2s and are broadly efficacious in several mouse models of lung damage...
April 16, 2024: Proceedings of the National Academy of Sciences of the United States of America
https://read.qxmd.com/read/38579712/tracing-the-origin-of-alveolar-stem-cells-in-lung-repair-and-regeneration
#13
JOURNAL ARTICLE
Kuo Liu, Xinfeng Meng, Zixin Liu, Muxue Tang, Zan Lv, Xiuzhen Huang, Hengwei Jin, Ximeng Han, Xiuxiu Liu, Wenjuan Pu, Huan Zhu, Bin Zhou
Alveolar type 2 (AT2) cells are stem cells of the alveolar epithelia. Previous genetic lineage tracing studies reported multiple cellular origins for AT2 cells after injury. However, conventional lineage tracing based on Cre-loxP has the limitation of non-specific labeling. Here, we introduced a dual recombinase-mediated intersectional genetic lineage tracing approach, enabling precise investigation of AT2 cellular origins during lung homeostasis, injury, and repair. We found AT1 cells, being terminally differentiated, did not contribute to AT2 cells after lung injury and repair...
March 27, 2024: Cell
https://read.qxmd.com/read/38579159/cell-crosstalk-in-alveolar-microenvironment-from-lung-injury-to-fibrosis
#14
JOURNAL ARTICLE
Licheng Song, Kuan Li, Huaiyong Chen, Lixin Xie
Alveoli are complex microenvironments composed of various cell types, including epithelial, fibroblast, endothelial, and immune cells, which work together to maintain a delicate balance in the lung environment, ensuring proper growth, development, and an effective response to lung injuries. However, prolonged inflammation or aging can disrupt normal interactions between these cells, leading to impaired repair processes and a substantial decline in lung function. Therefore, it is essential to understand the key mechanisms underlying the interactions between the major cell types within the alveolar microenvironment...
April 5, 2024: American Journal of Respiratory Cell and Molecular Biology
https://read.qxmd.com/read/38577707/role-of-regulatory-t-cells-in-mouse-lung-development
#15
JOURNAL ARTICLE
Jian-Feng Jiang, Hong-Yan Lu, Ming-Yan Wang, Lang-Yue He, Ying Zhu, Yu Qiao
Regulatory T cells (Tregs) constitute a specialized subset of T cells with dual immunoregulatory and modulatory functions. Recent studies have reported that Tregs mediate immune responses and regulate the development and repair processes in non-lymphoid tissues, including bone and cardiac muscle. Additionally, Tregs facilitate the repair and regeneration of damaged lung tissues. However, limited studies have examined the role of Tregs in pulmonary development. This study aimed to evaluate the role of Tregs in pulmonary development by investigating the dynamic alterations in Tregs and their hallmark cellular factor Forkhead box P3 (Foxp3) at various stages of murine lung development and establishing a murine model of anti-CD25 antibody-induced Treg depletion...
2024: Experimental Biology and Medicine
https://read.qxmd.com/read/38552636/screening-of-factors-inducing-alveolar-type-1-epithelial-cells-using-human-pluripotent-stem-cells
#16
JOURNAL ARTICLE
Yuko Ohnishi, Atsushi Masui, Takahiro Suezawa, Ryuta Mikawa, Toyohiro Hirai, Masatoshi Hagiwara, Shimpei Gotoh
Alveolar type 2 (AT2) epithelial cells are tissue stem cells capable of differentiating into alveolar type 1 (AT1) cells for injury repair and maintenance of lung homeostasis. However, the factors involved in human AT2-to-AT1 cell differentiation are not fully understood. Here, we established SFTPCGFP and AGERmCherry-HiBiT dual-reporter induced pluripotent stem cells (iPSCs), which detected AT2-to-AT1 cell differentiation with high sensitivity and identified factors inducing AT1 cell differentiation from AT2 and their progenitor cells...
March 19, 2024: Stem Cell Reports
https://read.qxmd.com/read/38542450/age-dependent-inflammatory-microenvironment-mediates-alveolar-regeneration
#17
JOURNAL ARTICLE
Rui Quan, Chenhong Shi, Bing Fang, Yanan Sun, Taiqi Qu, Xifan Wang, Ran Wang, Yiran Zhang, Fazheng Ren, Yixuan Li
Lung aging triggers the onset of various chronic lung diseases, with alveolar repair being a key focus for alleviating pulmonary conditions. The regeneration of epithelial structures, particularly the differentiation from type II alveolar epithelial (AT2) cells to type I alveolar epithelial (AT1) cells, serves as a prominent indicator of alveolar repair. Nonetheless, the precise role of aging in impeding alveolar regeneration and its underlying mechanism remain to be fully elucidated. Our study employed histological methods to examine lung aging effects on structural integrity and pathology...
March 20, 2024: International Journal of Molecular Sciences
https://read.qxmd.com/read/38529490/an-injury-induced-tissue-niche-shaped-by-mesenchymal-plasticity-coordinates-the-regenerative-and-disease-response-in-the-lung
#18
Dakota L Jones, Michael P Morley, Xinyuan Li, Yun Ying, Fabian L Cardenas-Diaz, Shanru Li, Su Zhou, Sarah E Schaefer, Ullas V Chembazhi, Ana Nottingham, Susan Lin, Edward Cantu, Joshua M Diamond, Maria C Basil, Andrew E Vaughan, Edward E Morrisey
Severe lung injury causes basal stem cells to migrate and outcompete alveolar stem cells resulting in dysplastic repair and a loss of gas exchange function. This "stem cell collision" is part of a multistep process that is now revealed to generate an i njury-induced t issue ni ch e (iTCH) containing Keratin 5+ epithelial cells and plastic Pdgfra+ mesenchymal cells. Temporal and spatial single cell analysis reveals that iTCHs are governed by mesenchymal proliferation and Notch signaling, which suppresses Wnt and Fgf signaling in iTCHs...
February 29, 2024: bioRxiv
https://read.qxmd.com/read/38523167/identification-of-non-coding-rna-signatures-in-idiopathic-pulmonary-fibrosis
#19
JOURNAL ARTICLE
Alperen Elek, Esra Bozgeyik, Halil Caska, Zekihan Gocer, Ibrahim Bozgeyik
BACKGROUND: Idiopathic pulmonary fibrosis (IPF) is a deadly, chronic, progressive, irreversible interstitial lung disease characterized by the formation of scar tissue resulting in permanent lung damage. The average survival time following diagnosis is only 3-5 years, with a 5-year survival rate shorter than that of many cancers. Alveolar epithelial cell injury followed by irregular repair is the primary pathological process observed in patients with IPF. An evident characteristic of IPF is the development of fibroblastic foci representing active fibrotic areas...
March 25, 2024: Irish Journal of Medical Science
https://read.qxmd.com/read/38513841/role-of-macrophage-bioenergetics-in-n-acetylcysteine-mediated-mitigation-of-lung-injury-and-oxidative-stress-induced-by-nitrogen-mustard
#20
JOURNAL ARTICLE
Rama Malaviya, Jaclynn Meshanni, Vasanthi R Sunil, Alessandro Venosa, Changjiang Guo, Elena V Abramova, Kinal N Vayas, Chenghui Jiang, Jessica A Cervelli, Andrew J Gow, Jeffrey D Laskin, Debra L Laskin
Nitrogen mustard (NM) is a toxic vesicant that causes acute injury to the respiratory tract. This is accompanied by an accumulation of activated macrophages in the lung and oxidative stress which have been implicated in tissue injury. In these studies, we analyzed the effects of N-acetylcysteine (NAC), an inhibitor of oxidative stress and inflammation on NM-induced lung injury, macrophage activation and bioenergetics. Treatment of rats with NAC (150 mg/kg, i.p., daily) beginning 30 min after administration of NM (0...
March 19, 2024: Toxicology and Applied Pharmacology
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