[1] MARTINEZ F J, COLLARD H R, PARDO A, et al. Idiopathic pulmonary fibrosis[J]. Nat Rev Dis Primers, 2017, 3: 17074. [2] MORA A L, ROJAS M, PARDO A, et al. Emerging therapies for idiopathic pulmonary fibrosis, a progressive age-related disease[J]. Nat Rev Drug Discov, 2017, 16(11): 755-772. [3] WANG L, HONG W, ZHU H, et al. Macrophage senescence in health and diseases[J]. Acta Pharm Sin B, 2024, 14(4): 1508-1524. [4] GINHOUX F, GUILLIAMS M. Tissue-resident macrophage ontogeny and homeostasis[J]. Immunity, 2016, 44(3): 439-449. [5] GU Y, LAWRENCE T, MOHAMED R, et al. The emerging roles of interstitial macrophages in pulmonary fibrosis: a perspective from scRNA-seq analyses[J]. Front Immunol, 2022, 13: 923235. [6] MISHARIN A V, MORALES-NEBREDA L, REYFMAN P A, et al. Monocyte-derived alveolar macrophages drive lung fibrosis and persist in the lung over the life span[J]. J Exp Med, 2017, 214(8): 2387-2404. [7] MURRAY P J, ALLEN J E, BISWAS S K, et al. Macrophage activation and polarization: nomenclature and experimental guidelines[J]. Immunity, 2014, 41(1): 14-20. [8] LOCATI M, CURTALE G, MANTOVANI A. Diversity, mechanisms, and significance of macrophage plasticity[J]. Annu Rev Pathol, 2020, 15: 123-147. [9] WYNN T A, VANNELLA K M. Macrophages intissue repair, regeneration, and fibrosis[J]. Immunity, 2016, 44(3): 450-462. [10] WANG L X, ZHANG S X, WU H J, et al. M2b macrophage polarization and its roles in diseases[J]. J Leukoc Biol, 2019, 106(2): 345-358. [11] WANG Q, NI H, LAN L, et al. Fra-1 protooncogene regulates IL-6 expression in macrophages and promotes the generation of M2d macrophages[J]. Cell Res, 2010, 20(6): 701-712. [12] AEGERTER H, LAMBRECHT B N, JAKUBZICK C V. Biology of lung macrophages in health and disease[J]. Immunity, 2022, 55(9): 1564-1580. [13] GE Z, CHEN Y, MA L, et al. Macrophage polarization and its impact on idiopathic pulmonary fibrosis[J]. Front Immunol, 2024, 15: 1444964. [14] WENDISCH D, DIETRICH O, MARI T, et al. SARS-CoV-2 infection triggers profibrotic macrophage responses and lung fibrosis[J]. Cell, 2021, 184(26): 6243-6261. e27. [15] SU L, DONG Y, WANG Y, et al. Potential role of senescent macrophages in radiation-induced pulmonary fibrosis[J]. Cell Death Dis, 2021, 12(6): 527. [16] DI MICCO R, KRIZHANOVSKY V, BAKER D, et al. Cellular senescence in ageing: from mechanisms to therapeutic opportunities[J]. Nat Rev Mol Cell Biol, 2021, 22(2): 75-95. [17] ZANK D C, BUENO M, MORA A L, et al. Idiopathic pulmonary fibrosis: aging, mitochondrial dysfunction, and cellular bioenergetics[J]. Front Med, 2018, 5: 10. [18] CRAIG V J, ZHANG L, HAGOOD J S, et al. Matrix metalloproteinases as therapeutic targets for idiopathic pulmonary fibrosis[J]. Am J Respir Cell Mol Biol, 2015, 53(5): 585-600. [19] MENG X M, NIKOLIC-PATERSON D J, LAN H Y. TGF-β: the master regulator of fibrosis[J]. Nat Rev Nephrol, 2016, 12(6): 325-338. [20] KREIN P M, WINSTON B W. Roles for insulin-like growth factor I and transforming growth factor-beta in fibrotic lung disease[J]. Chest, 2002, 122(6 Suppl): 289S-293S. [21] GHOSH A K, VAUGHAN D E. PAI-1 in tissue fibrosis[J]. J Cell Physiol, 2012, 227(2): 493-507. [22] VAN DYKEN S J, LOCKSLEY R M. Interleukin-4- and interleukin-13-mediated alternatively activated macrophages: roles in homeostasis and disease[J]. Annu Rev Immunol, 2013, 31: 317-343. [23] SCHLOESSER D, LINDENTHAL L, SAUER J, et al. Senescent cells suppress macrophage-mediated corpse removal via upregulation of the CD47-QPCT/L axis[J]. J Cell Biol, 2023, 222(2): e202207097. [24] XU M, PIRTSKHALAVA T, FARR J N, et al. Senolytics improve physical function and increase lifespan in old age[J]. Nat Med, 2018, 24(8): 1246-1256. [25] JUSTICE J N, NAMBIAR A M, TCHKONIA T, et al. Senolytics in idiopathic pulmonary fibrosis: results from a first-in-human, open-label, pilot study[J]. EBioMedicine, 2019, 40: 554-563. [26] BASU A, ARIF M, WOLF K M, et al. Targeting cannabinoid receptor 1 for antagonism in pro-fibrotic alveolar macrophages mitigates pulmonary fibrosis[J]. JCI Insight, 2025, 10(15): e187967. [27] LI Y, CHEN R, WU J, et al. Salvianolic acid B protects against pulmonary fibrosis by attenuating stimulating protein 1-mediated macrophage and alveolar type 2 cell senescence[J]. Phytother Res, 2024, 38(2): 620-635. [28] NIE Y, ZHAI X, LI J, et al. NFATc3 promotes pulmonary inflammation and fibrosis by regulating production of CCL2 and CXCL2 in macrophages[J]. Aging Dis, 2023, 14(4): 1441-1457. [29] RASAEI R, TYAGI A, RASAEI S, et al. Human pluripotent stem cell-derived macrophages and macrophage-derived exosomes: therapeutic potential in pulmonary fibrosis[J]. Stem Cell Res Ther, 2022, 13(1): 433. |