| Citation: | Xin Zheng, Yiwei Ding, Fan Wang, Jiajia Tang, Zhihai Han, Xuxin Chen. Silencing lipocalin-2 ameliorates severe hypothermia-induced acute lung injury in rats by regulating macrophage polarization[J]. Frigid Zone Medicine, 2026, 6(1): 25-39. doi: 10.1515/fzm-2026-0003 |
| [1] |
Tomassini L, Lancia M, Gambelunghe C, et al. Immunohistochemical insights into hypothermia-related deaths: A systematic review. Forensic Sci Med Pathol, 2025; 21: 1358-1369. doi: 10.1007/s12024-024-00934-0
|
| [2] |
Paal P, Pasquier M, Darocha T, et al. Accidental Hypothermia: 2021 Update. Int J Environ Res Public Health, 2022; 19(1): 501. doi: 10.3390/ijerph19010501
|
| [3] |
Shahrbabak S M, Bouzid Z, Inan O T, et al. Physiology and enabling technologies for quantitative assessment of survivability during cold water immersion and rewarming: A review. Prog Biomed Eng (Bristol), 2025; 7(4): 1-23. doi: 10.1088/2516-1091/ae0c4b
|
| [4] |
Hleșcu A A, Grigoraș A, Ianole V, et al. Advanced diagnostic tools in hypothermia-related fatalities-a pathological perspective. Diagnostics (Basel), 2024; 14(7): 739. doi: 10.3390/diagnostics14070739
|
| [5] |
Ding Y, Xu Y, Wang J, et al. Cold-inducible RNA-binding protein causes prolonged immersion-induced hypothermic acute lung injury in a rat model through TREM-1 and NF-κB. Faseb J, 2025; 39: e70955. doi: 10.1096/fj.202402540RRR
|
| [6] |
Liu J, Wu J, Qiao C, et al. Impact of chronic cold exposure on lung inflammation, pyroptosis and oxidative stress in mice. Int Immunopharmacol, 2023; 115: 109590. doi: 10.1016/j.intimp.2022.109590
|
| [7] |
Shapiro K A, Phillips T C, Dineen E H, et al. The heart underwater: mechanisms and treatments of immersion pulmonary edema. Current Treatment Options in Cardiovascular Medicine, 2025; 19(27): 1075-1079. doi: 10.1007/s11936-025-01075-5
|
| [8] |
Wang Z, Wang Z. The role of macrophages polarization in sepsis-induced acute lung injury. Front Immunol, 2023; 14: 1209438. doi: 10.3389/fimmu.2023.1209438
|
| [9] |
Liu C, Xiao K, Xie L. Advances in the regulation of macrophage polarization by mesenchymal stem cells and implications for ALI/ARDS treatment. Front Immunol, 2022; 13: 928134. doi: 10.3389/fimmu.2022.928134
|
| [10] |
Zhu G, Yu H, Peng T, et al. Glycolytic enzyme PGK1 promotes M1 macrophage polarization and induces pyroptosis of acute lung injury via regulation of NLRP3. Respir Res, 2024; 25: 291. doi: 10.1186/s12931-024-02926-8
|
| [11] |
Yan M, Tang J, Liu Y, et al. Progress of alveolar macrophages in biological function and acute lung injury/acute respiratory distress syndrome. Front Immunol, 2025; 16: 1683411. doi: 10.3389/fimmu.2025.1683411
|
| [12] |
Deshpande D, Chhugani K, Chang Y, et al. RNA-seq data science: From raw data to efective interpretation. Front Genet, 2023; 14: 997383. doi: 10.3389/fgene.2023.997383
|
| [13] |
Pasmanik-Chor M. Biological perspectives of RNA-sequencing experimental design. Methods Mol Biol, 2021; 2243: 327-337. doi: 10.1007/978-1-0716-1103-6_17
|
| [14] |
Cheng L, Xing H, Mao X, et al. Lipocalin-2 promotes m1 macrophages polarization in a mouse cardiac ischaemia-reperfusion injury model. Scand J Immunol, 2015; 81: 31-38. doi: 10.1111/sji.12245
|
| [15] |
Reynolds P, Wall P, Van Griensven M, et al. Shock supports the use of animal research reporting guidelines. Shock, 2012; 38: 1-3. doi: 10.1097/SHK.0b013e31825f396c
|
| [16] |
Huang H, Wang J, Hussain S A, et al. Gossypin exert lipopolysaccharide induced lung inflammation via alteration of Nrf2/HO-1 and NF-κB signaling pathway. Environ Toxicol, 2023; 38: 1786-1799. doi: 10.1002/tox.23806
|
| [17] |
Konkimalla A, Elmore Z, Konishi S, et al. Eficient Adeno-associated virus-mediated transgenesis in alveolar stem cells and associated niches. Am J Respir Cell Mol Biol, 2023; 69: 255-265. doi: 10.1165/rcmb.2022-0424MA
|
| [18] |
El Fakihi S, El Allam A, Tahoune H, et al. Functional characterization of small and large alveolar macrophages in sarcoidosis and idiopathic pulmonary fibrosis compared with non-fibrosis interstitial lung diseases. Hum Antibodies, 2023; 31: 59-69. doi: 10.3233/HAB-230005
|
| [19] |
Smith K M, Mrozek J D, Simonton S C, et al. Prolonged partial liquid ventilation using conventional and high-frequency ventilatory techniques: gas exchange and lung pathology in an animal model of respiratory distress syndrome. Crit Care Med, 1997; 25: 1888-1897. doi: 10.1097/00003246-199711000-00030
|
| [20] |
Tang J, Ding Y, Chen W, et al. VASP knockdown ameliorates lipopolysaccharide-induced acute lung injury with inhibition of M1 macrophage polarization through the cGMP-PKG signaling pathway. Inflammation, 2025; 48(5): 3458-3471. doi: 10.1007/s10753-025-02277-6
|
| [21] |
Wiberg S, Mortensen A F, Kjaergaard J, et al. Accidental hypothermia in Denmark: A nationwide cohort study of incidence and outcomes. BMJ Open, 2021; 11: e046806. doi: 10.1136/bmjopen-2020-046806
|
| [22] |
Dickinson G M, Maya G X, Lo Y, et al. Hypothermia-related deaths: a 10-year retrospective study of two major metropolitan cities in the United States. J Forensic Sci, 2020; 65: 2013-2018. doi: 10.1111/1556-4029.14518
|
| [23] |
Bjertnæs L J, Næsheim T O, Reierth E, et al. Physiological changes in subjects exposed to accidental hypothermia: An update. Front Med (Lausanne), 2022; 9: 824395. doi: 10.3389/fmed.2022.824395
|
| [24] |
Kulkarni H S, Lee J S, Bastarache J A, et al. Update on the features and measurements of experimental acute lung injury in animals: an oficial American thoracic society workshop report. Am J Respir Cell Mol Biol, 2022; 66: e1-e14.
|
| [25] |
Chen X, Tang J, Shuai W, et al. Macrophage polarization and its role in the pathogenesis of acute lung injury/acute respiratory distress syndrome. Inflamm Res, 2020; 69: 883-895. doi: 10.1007/s00011-020-01378-2
|
| [26] |
Shan Q, Dong Z, Li N, et al. Deciphering the heterogeneity of pulmonary macrophages in response to fine particles. Small, 2026; 22: e07293. doi: 10.1002/smll.202507293
|
| [27] |
Speth J M, Bourdonnay E, Penke L R, et al. Alveolar epithelial cell-derived prostaglandin E2 serves as a request signal for macrophage secretion of suppressor of cytokine signaling 3 during innate inflammation. J Immunol, 2016; 196: 5112-5120. doi: 10.4049/jimmunol.1502153
|
| [28] |
Morrison T J, Jackson M V, Cunningham E K, et al. Mesenchymal stromal cells modulate macrophages in clinically relevant lung injury models by extracellular vesicle mitochondrial transfer. Am J Respir Crit Care Med, 2017; 196: 1275-1286. doi: 10.1164/rccm.201701-0170OC
|
| [29] |
Guardado S, Ojeda-Juárez D, Kaul M, et al. Comprehensive review of lipocalin 2-mediated efects in lung inflammation. Am J Physiol Lung Cell Mol Physiol, 2021; 321: L726-L733. doi: 10.1152/ajplung.00080.2021
|
| [30] |
Sciarretta F, Ceci V, Tiberi M, et al. Lipocalin-2 promotes adipose-macrophage interactions to shape peripheral and central inflammatory responses in experimental autoimmune encephalomyelitis. Mol Metab, 2023; 76: 101783. doi: 10.1016/j.molmet.2023.101783
|
| [31] |
An H S, Lee J, Lee S J, et al. Lipocalin-2 deletion attenuates lipopolysaccharide-induced acute lung inflammation via downregulating chemotaxis-related genes. Biochem Biophys Res Commun, 2023; 652: 14-21. doi: 10.1016/j.bbrc.2023.02.029
|
| [32] |
An H S, Yoo J W, Jeong J H, et al. Lipocalin-2 promotes acute lung inflammation and oxidative stress by enhancing macrophage iron accumulation. Int J Biol Sci, 2023; 19: 1163-1177. doi: 10.7150/ijbs.79915
|
| [33] |
Wang X, Zhang C, Zou N, et al. Lipocalin-2 silencing suppresses inflammation and oxidative stress of acute respiratory distress syndrome by ferroptosis via inhibition of MAPK/ERK pathway in neonatal mice. Bioengineered, 2022; 13: 508-520. doi: 10.1080/21655979.2021.2009970
|
| [34] |
Lu F, Inoue K, Kato J, et al. Functions and regulation of lipocalin-2 in gut-origin sepsis: A narrative review. Crit Care, 2019; 23: 269. doi: 10.1186/s13054-019-2550-2
|
| [35] |
Du H, Liang L, Li J, et al. Lipocalin-2 alleviates LPS-induced inflammation through alteration of macrophage properties. J Inflamm Res, 2021; 14: 4189-4203. doi: 10.2147/JIR.S328916
|
| [36] |
Lindstrom E, Deis J, Bernlohr D A, et al. Lipocalin 2 in obesity and diabetes: insights into its role in energy metabolism. Endocrines, 2025; 6(1): 4. doi: 10.3390/endocrines6010004
|
| [37] |
Jensen B L. Beyond being a biomarker: lipocalin-2/NGAL as a facilitator for protective drug action in hypoxic kidney injury. Acta Physiol (Oxf), 2025; 241: e70110. doi: 10.1111/apha.70110
|
| [38] |
Zhang Z X, Peng J, Ding W W. Lipocalin-2 and intestinal diseases. World J Gastroenterol, 2024; 30: 4864-4879. doi: 10.3748/wjg.v30.i46.4864
|
| [39] |
Mitsui Y, Satoh T. Functional diversity of disorder-specific macrophages involved in various diseases. Inflamm Regen, 2025; 45: 29. doi: 10.1186/s41232-025-00390-5
|
| [40] |
Hume P S, Lyn-Kew K H, Wynn E A, et al. Spatial heterogeneity of
macrophages in the human lung. (2025-05-30) [2026-03-02].
|
| [41] |
Chen X, Wang F, Tang J, et al. Paralemmin-3 augments lipopolysaccharide-induced acute lung injury with M1 macrophage polarization via the notch signaling pathway. Respir Physiol Neurobiol, 2024; 320: 104203. doi: 10.1016/j.resp.2023.104203
|
| [42] |
Lv Y, Zhang L. IRF7 Activates LCN2 Transcription to enhance LPS-induced acute lung injury by inducing macrophage ferroptosis and M1 polarization. Cell Biochem Biophys, 2025; 83: 2415-2430. doi: 10.1007/s12013-024-01651-9
|