Skip to main content
Top
Published in: Inflammation 3/2022

01-06-2022 | Acute Respiratory Distress-Syndrome | Original Article

Kindlin-2 Mediates Lipopolysaccharide-Induced Acute Lung Injury Partially via Pyroptosis in Mice

Authors: Yi-Dan Huang, Yu Fang, Li Ma, Peng-Jiu Feng, Wen-Long Li, Yi-Qi Zhou, Yuan-Hao Qin, Zhi-Jian You, Liang Dong

Published in: Inflammation | Issue 3/2022

Login to get access

Abstract

Acute lung injury (ALI) is characteristic of the wholesale destruction of the lung endothelial barrier, which results in protein-rich lung edema, influx of pro-inflammatory leukocytes, and intractable hypoxemia, contributing to high mortality. Kindlin-2 is involved in the process of tumor- and wound healing-associated inflammation. However, the effects of kindlin-2 on lipopolysaccharide (LPS)-induced ALI and its mechanisms remain unknown. In this study, we found that the concentration of kindlin-2 was elevated in the lungs of ALI mice. The specific deletion of kindlin-2 by kindlin-2 siRNA attenuated the severity of lung injury, which was demonstrated by the reduced number of pro-inflammatory cells in bronchoalveolar lavage fluid and lung wet/dry weight ratio, and ameliorated pathologic changes in the lungs of ALI mice. Furthermore, kindlin-2 siRNA decreased the mRNA levels of pro-inflammatory factors (IL-1β, IL-6, and TNF-α) and the protein levels of pyroptosis-related proteins. In vitro studies confirmed that LPS + ATP promoted the expressions of pro-inflammatory factors and pyroptosis-related proteins, which was prevented by kindlin-2 siRNA pretreatment in endothelial cells (ECs). In conclusion, inhibition of kindlin-2 developes protective effects against LPS-induced ALI and the cytotoxicity of ECs, which may depend on blocking pyroptosis.
Literature
1.
go back to reference Liu X, Gao C, Wang Y, Niu L, Jiang S, and S, Pan. 2021. BMSC-derived exosomes ameliorate LPS-induced acute lung injury by miR-384–5p-controlled alveolar macrophage autophagy. Oxidative Medicine and Cellular Longevity 9973457. Liu X, Gao C, Wang Y, Niu L, Jiang S, and S, Pan. 2021. BMSC-derived exosomes ameliorate LPS-induced acute lung injury by miR-384–5p-controlled alveolar macrophage autophagy. Oxidative Medicine and Cellular Longevity 9973457.
2.
go back to reference Dos Santos, Claudia C., Hajera Amatullah, Chirag M. Vaswani, Tatiana Maron-Gutierrez, Michael Kim, Shirley HJ Mei, Katalin Szaszi et al. 2022. Mesenchymal stromal (stem) Cell (MSC) therapy modulates miR-193b-5p expression to attenuate sepsis-induced acute lung injury. The European Respiratory Journal 59: 2004216. Dos Santos, Claudia C., Hajera Amatullah, Chirag M. Vaswani, Tatiana Maron-Gutierrez, Michael Kim, Shirley HJ Mei, Katalin Szaszi et al. 2022. Mesenchymal stromal (stem) Cell (MSC) therapy modulates miR-193b-5p expression to attenuate sepsis-induced acute lung injury. The European Respiratory Journal 59: 2004216.
3.
go back to reference García-Fernández, Alba, Mónica Sancho, Viviana Bisbal, Pedro Amorós, María D. Marcos, Mar Orzáez, Félix Sancenón, and Ramón Martínez-Máñez. 2021. Targeted-lung delivery of dexamethasone using gated mesoporous silica nanoparticles. A new therapeutic approach for acute lung injury treatment. Journal of Controlled Release: Official Journal of the Controlled Release Society 337: 14–26. García-Fernández, Alba, Mónica Sancho, Viviana Bisbal, Pedro Amorós, María D. Marcos, Mar Orzáez, Félix Sancenón, and Ramón Martínez-Máñez. 2021. Targeted-lung delivery of dexamethasone using gated mesoporous silica nanoparticles. A new therapeutic approach for acute lung injury treatment. Journal of Controlled Release: Official Journal of the Controlled Release Society 337: 14–26.
4.
go back to reference Wang, R., Y. Wang, L. Hu, Z. Lu, and X. Wang. 2021. Inhibition of complement C5a receptor protects lung cells and tissues against lipopolysaccharide-induced injury via blocking pyroptosis. Aging 13: 8588–8598.CrossRef Wang, R., Y. Wang, L. Hu, Z. Lu, and X. Wang. 2021. Inhibition of complement C5a receptor protects lung cells and tissues against lipopolysaccharide-induced injury via blocking pyroptosis. Aging 13: 8588–8598.CrossRef
5.
go back to reference Cheng, Kwong Tai, Shiqin Xiong, Zhiming Ye, Zhigang Hong, Anke Di, Kit Man Tsang, and Xiaopei Gao et al. 2017. Caspase-11-mediated endothelial pyroptosis underlies endotoxemia-induced lung injury. The Journal of Clinical Investigation 127: 4124–4135. Cheng, Kwong Tai, Shiqin Xiong, Zhiming Ye, Zhigang Hong, Anke Di, Kit Man Tsang, and Xiaopei Gao et al. 2017. Caspase-11-mediated endothelial pyroptosis underlies endotoxemia-induced lung injury. The Journal of Clinical Investigation 127: 4124–4135.
6.
go back to reference Mehta, D., and A.B. Malik. 2006. Signaling mechanisms regulating endothelial permeability. Physiological Reviews 86: 279–367. Mehta, D., and A.B. Malik. 2006. Signaling mechanisms regulating endothelial permeability. Physiological Reviews 86: 279–367.
7.
go back to reference Maniatis, N.A., and S.E. Orfanos. 2008. The endothelium in acute lung injury/acute respiratory distress syndrome. Current Opinion in Critical Care 14: 22–30. Maniatis, N.A., and S.E. Orfanos. 2008. The endothelium in acute lung injury/acute respiratory distress syndrome. Current Opinion in Critical Care 14: 22–30.
8.
go back to reference Cao, Y., Chen, X., Liu, Y., Zhang, X., Zou, Y., and J. Li. 2021. PIM1 inhibition attenuated endotoxin-induced acute lung injury through modulating ELK3/ICAM1 axis on pulmonary microvascular endothelial cells. Inflammation Research: Official Journal of the European Histamine Research Society [et al] 70: 89–98. Cao, Y., Chen, X., Liu, Y., Zhang, X., Zou, Y., and J. Li. 2021. PIM1 inhibition attenuated endotoxin-induced acute lung injury through modulating ELK3/ICAM1 axis on pulmonary microvascular endothelial cells. Inflammation Research: Official Journal of the European Histamine Research Society [et al] 70: 89–98.
9.
go back to reference Jorgensen, I., and E.A. Miao. 2015. Pyroptotic cell death defends against intracellular pathogens. Immunological Reviews 265: 130–142. Jorgensen, I., and E.A. Miao. 2015. Pyroptotic cell death defends against intracellular pathogens. Immunological Reviews 265: 130–142.
10.
go back to reference Tan, S., and S. Chen. 2021. The mechanism and effect of autophagy, apoptosis, and pyroptosis on the progression of silicosis. International Journal of Molecular Sciences 22. Tan, S., and S. Chen. 2021. The mechanism and effect of autophagy, apoptosis, and pyroptosis on the progression of silicosis. International Journal of Molecular Sciences 22.
11.
go back to reference Wang, Y.C., et al. 2019. Dihydromyricetin alleviates sepsis-induced acute lung injury through inhibiting NLRP3 inflammasome-dependent pyroptosis in mice model. Inflammation 42: 1301–1310.CrossRef Wang, Y.C., et al. 2019. Dihydromyricetin alleviates sepsis-induced acute lung injury through inhibiting NLRP3 inflammasome-dependent pyroptosis in mice model. Inflammation 42: 1301–1310.CrossRef
12.
go back to reference Yang, J., et al. 2016. Hemorrhagic shock primes for lung vascular endothelial cell pyroptosis: role in pulmonary inflammation following LPS. Cell Death & Disease 7: e2363. Yang, J., et al. 2016. Hemorrhagic shock primes for lung vascular endothelial cell pyroptosis: role in pulmonary inflammation following LPS. Cell Death & Disease 7: e2363.
13.
go back to reference Wu, D., et al. 2016. Interferon regulatory factor-1 mediates alveolar macrophage pyroptosis during LPS-induced acute lung injury in mice. Shock (Augusta, Ga) 46: 329–338. Wu, D., et al. 2016. Interferon regulatory factor-1 mediates alveolar macrophage pyroptosis during LPS-induced acute lung injury in mice. Shock (Augusta, Ga) 46: 329–338.
14.
go back to reference Zou, D.M., Zhou, S.M., Li, L.H., Zhou, J.L., Tang, Z.M., Wang, S.H. 2020. Knockdown of long noncoding RNAs of maternally expressed 3 alleviates hyperoxia-induced lung injury via inhibiting thioredoxin-interacting protein-mediated pyroptosis by binding to miR-18a. The American Journal of Pathology 190: 994–1005. Zou, D.M., Zhou, S.M., Li, L.H., Zhou, J.L., Tang, Z.M., Wang, S.H. 2020. Knockdown of long noncoding RNAs of maternally expressed 3 alleviates hyperoxia-induced lung injury via inhibiting thioredoxin-interacting protein-mediated pyroptosis by binding to miR-18a. The American Journal of Pathology 190: 994–1005.
15.
go back to reference Noda, K., et al. 2017. Targeting circulating leukocytes and pyroptosis during ex vivo lung perfusion improves lung preservation. Transplantation 101: 2841–2849.CrossRef Noda, K., et al. 2017. Targeting circulating leukocytes and pyroptosis during ex vivo lung perfusion improves lung preservation. Transplantation 101: 2841–2849.CrossRef
16.
go back to reference Cao, H., et al. 2020. Focal adhesion protein kindlin-2 regulates bone homeostasis in mice. Bone Research 8: 2. Cao, H., et al. 2020. Focal adhesion protein kindlin-2 regulates bone homeostasis in mice. Bone Research 8: 2.
17.
go back to reference Guo, L., et al. 2019. Kindlin-2 links mechano-environment to proline synthesis and tumor growth. Nature Communications 10: 845. Guo, L., et al. 2019. Kindlin-2 links mechano-environment to proline synthesis and tumor growth. Nature Communications 10: 845.
18.
go back to reference Zhu, K., et al. 2020. Kindlin-2 modulates MafA and β-catenin expression to regulate β-cell function and mass in mice. Nature Communications 11: 484. Zhu, K., et al. 2020. Kindlin-2 modulates MafA and β-catenin expression to regulate β-cell function and mass in mice. Nature Communications 11: 484.
19.
go back to reference Godbout, E., et al. 2020. Kindlin-2 mediates mechanical activation of cardiac myofibroblasts. Cells 9. Godbout, E., et al. 2020. Kindlin-2 mediates mechanical activation of cardiac myofibroblasts. Cells 9.
20.
go back to reference Rognoni, E., R. Ruppert, and R. Fassler. 2016. The kindlin family: Functions, signaling properties and implications for human disease. Journal of Cell Science 129: 17–27.CrossRef Rognoni, E., R. Ruppert, and R. Fassler. 2016. The kindlin family: Functions, signaling properties and implications for human disease. Journal of Cell Science 129: 17–27.CrossRef
21.
go back to reference Gao. H., et al. 2019. Lipoatrophy and metabolic disturbance in mice with adipose-specific deletion of kindlin-2. JCI Insight 4. Gao. H., et al. 2019. Lipoatrophy and metabolic disturbance in mice with adipose-specific deletion of kindlin-2. JCI Insight 4.
22.
go back to reference Pan, Y., Wang, Q., Luan, W., Shi, Y., Liu, J., and F. Qi. 2021. Kindlin-2 regulates the differentiation of 3T3-L1 preadipocytes: implications for wound healing. Annals of Translational Medicine 9: 348. Pan, Y., Wang, Q., Luan, W., Shi, Y., Liu, J., and F. Qi. 2021. Kindlin-2 regulates the differentiation of 3T3-L1 preadipocytes: implications for wound healing. Annals of Translational Medicine 9: 348.
23.
go back to reference Dong, L., et al. 2021. Activation of TREM-1 induces endoplasmic reticulum stress through IRE-1alpha/XBP-1s pathway in murine macrophages. Molecular Immunology 135: 294–303.CrossRef Dong, L., et al. 2021. Activation of TREM-1 induces endoplasmic reticulum stress through IRE-1alpha/XBP-1s pathway in murine macrophages. Molecular Immunology 135: 294–303.CrossRef
24.
go back to reference Song, J., et al. 2019. Kindlin-2 inhibits the Hippo signaling pathway by promoting degradation of MOB1. Cell Reports 29: 3664–3677.e3665. Song, J., et al. 2019. Kindlin-2 inhibits the Hippo signaling pathway by promoting degradation of MOB1. Cell Reports 29: 3664–3677.e3665.
25.
go back to reference Zhang, P., et al. 2021. Kindlin-2 acts as a key mediator of lung fibroblast activation and pulmonary fibrosis progression. American Journal of Respiratory Cell and Molecular Biology 65: 54–69. Zhang, P., et al. 2021. Kindlin-2 acts as a key mediator of lung fibroblast activation and pulmonary fibrosis progression. American Journal of Respiratory Cell and Molecular Biology 65: 54–69.
26.
go back to reference Wei, X., et al. 2013. Kindlin-2 mediates activation of TGF-beta/Smad signaling and renal fibrosis. Journal of the American Society of Nephrology 24: 1387–1398.CrossRef Wei, X., et al. 2013. Kindlin-2 mediates activation of TGF-beta/Smad signaling and renal fibrosis. Journal of the American Society of Nephrology 24: 1387–1398.CrossRef
27.
go back to reference Shen, Z., et al. 2013. The novel focal adhesion gene kindlin-2 promotes the invasion of gastric cancer cells mediated by tumor-associated macrophages. Oncology Reports 29: 791–797. Shen, Z., et al. 2013. The novel focal adhesion gene kindlin-2 promotes the invasion of gastric cancer cells mediated by tumor-associated macrophages. Oncology Reports 29: 791–797.
28.
go back to reference Kurundkar, D., et al. 2019. SIRT3 diminishes inflammation and mitigates endotoxin-induced acute lung injury. JCI Insight 4. Kurundkar, D., et al. 2019. SIRT3 diminishes inflammation and mitigates endotoxin-induced acute lung injury. JCI Insight 4.
29.
go back to reference Xu, W.J., et al. 2019. Inhibition of GGPPS1 attenuated LPS-induced acute lung injury and was associated with NLRP3 inflammasome suppression. American Journal of Physiology Lung Cellular and Molecular Physiology 316: L567–l577. Xu, W.J., et al. 2019. Inhibition of GGPPS1 attenuated LPS-induced acute lung injury and was associated with NLRP3 inflammasome suppression. American Journal of Physiology Lung Cellular and Molecular Physiology 316: L567–l577.
30.
go back to reference Yan, J., et al. 2018. Nrf2 protects against acute lung injury and inflammation by modulating TLR4 and Akt signaling. Free Radical Biology & Medicine 121: 78–85. Yan, J., et al. 2018. Nrf2 protects against acute lung injury and inflammation by modulating TLR4 and Akt signaling. Free Radical Biology & Medicine 121: 78–85.
31.
go back to reference Huang, X.T., et al. 2020. Galectin-1 ameliorates lipopolysaccharide-induced acute lung injury via AMPK-Nrf2 pathway in mice. Free Radical Biology & Medicine 146: 222–233. Huang, X.T., et al. 2020. Galectin-1 ameliorates lipopolysaccharide-induced acute lung injury via AMPK-Nrf2 pathway in mice. Free Radical Biology & Medicine 146: 222–233.
32.
go back to reference Lei, J., et al. 2018. Cordycepin inhibits LPS-induced acute lung injury by inhibiting inflammation and oxidative stress. European Journal of Pharmacology 818: 110–114. Lei, J., et al. 2018. Cordycepin inhibits LPS-induced acute lung injury by inhibiting inflammation and oxidative stress. European Journal of Pharmacology 818: 110–114.
33.
go back to reference Wu. X., Kong, Q., Zhan, L., Qiu, Z., Huang, Q., and X. Song. 2019. TIPE2 ameliorates lipopolysaccharide-induced apoptosis and inflammation in acute lung injury. Inflammation Research: Official Journal of the European Histamine Research Society [et al] 68: 981–992. Wu. X., Kong, Q., Zhan, L., Qiu, Z., Huang, Q., and X. Song. 2019. TIPE2 ameliorates lipopolysaccharide-induced apoptosis and inflammation in acute lung injury. Inflammation Research: Official Journal of the European Histamine Research Society [et al] 68: 981–992.
34.
go back to reference Frank, D., and J.E. Vince. 2019. Pyroptosis versus necroptosis: Similarities, differences, and crosstalk. Cell Death and Differentiation 26: 99–114. Frank, D., and J.E. Vince. 2019. Pyroptosis versus necroptosis: Similarities, differences, and crosstalk. Cell Death and Differentiation 26: 99–114.
35.
go back to reference Shi, J., Gao, W., and F. Shao. 2017. Pyroptosis: Gasdermin-mediated programmed necrotic cell death. Trends in Biochemical Sciences 42: 245–254. Shi, J., Gao, W., and F. Shao. 2017. Pyroptosis: Gasdermin-mediated programmed necrotic cell death. Trends in Biochemical Sciences 42: 245–254.
36.
go back to reference Russo, HM., Rathkey, J., Boyd-Tressler, A., Katsnelson, M.A., Abbott, D.W., and G.R. Dubyak. 2016. Active caspase-1 induces plasma membrane pores that precede pyroptotic lysis and are blocked by lanthanides. Journal of Immunology (Baltimore, Md: 1950) 197: 1353–1367. Russo, HM., Rathkey, J., Boyd-Tressler, A., Katsnelson, M.A., Abbott, D.W., and G.R. Dubyak. 2016. Active caspase-1 induces plasma membrane pores that precede pyroptotic lysis and are blocked by lanthanides. Journal of Immunology (Baltimore, Md: 1950) 197: 1353–1367.
37.
go back to reference Shao, X.F., et al. 2020. Ghrelin alleviates traumatic brain injury-induced acute lung injury through pyroptosis/NF-κB pathway. International Immunopharmacology 79: 106175. Shao, X.F., et al. 2020. Ghrelin alleviates traumatic brain injury-induced acute lung injury through pyroptosis/NF-κB pathway. International Immunopharmacology 79: 106175.
38.
go back to reference Mitra, S., et al. 2018. Microparticulate caspase 1 regulates gasdermin D and pulmonary vascular endothelial cell injury. American Journal of Respiratory Cell and Molecular Biology 59: 56–64. Mitra, S., et al. 2018. Microparticulate caspase 1 regulates gasdermin D and pulmonary vascular endothelial cell injury. American Journal of Respiratory Cell and Molecular Biology 59: 56–64.
39.
go back to reference Arioz, B.I., et al. 2019. Melatonin attenuates LPS-induced acute depressive-like behaviors and microglial NLRP3 inflammasome activation through the SIRT1/Nrf2 pathway. Frontiers in Immunology 10: 1511. Arioz, B.I., et al. 2019. Melatonin attenuates LPS-induced acute depressive-like behaviors and microglial NLRP3 inflammasome activation through the SIRT1/Nrf2 pathway. Frontiers in Immunology 10: 1511.
Metadata
Title
Kindlin-2 Mediates Lipopolysaccharide-Induced Acute Lung Injury Partially via Pyroptosis in Mice
Authors
Yi-Dan Huang
Yu Fang
Li Ma
Peng-Jiu Feng
Wen-Long Li
Yi-Qi Zhou
Yuan-Hao Qin
Zhi-Jian You
Liang Dong
Publication date
01-06-2022
Publisher
Springer US
Published in
Inflammation / Issue 3/2022
Print ISSN: 0360-3997
Electronic ISSN: 1573-2576
DOI
https://doi.org/10.1007/s10753-021-01613-w

Other articles of this Issue 3/2022

Inflammation 3/2022 Go to the issue
Live Webinar | 27-06-2024 | 18:00 (CEST)

Keynote webinar | Spotlight on medication adherence

Live: Thursday 27th June 2024, 18:00-19:30 (CEST)

WHO estimates that half of all patients worldwide are non-adherent to their prescribed medication. The consequences of poor adherence can be catastrophic, on both the individual and population level.

Join our expert panel to discover why you need to understand the drivers of non-adherence in your patients, and how you can optimize medication adherence in your clinics to drastically improve patient outcomes.

Prof. Kevin Dolgin
Prof. Florian Limbourg
Prof. Anoop Chauhan
Developed by: Springer Medicine
Obesity Clinical Trial Summary

At a glance: The STEP trials

A round-up of the STEP phase 3 clinical trials evaluating semaglutide for weight loss in people with overweight or obesity.

Developed by: Springer Medicine