Skip to main content
Top
Published in: Inflammation 3/2020

01-06-2020 | Doxycycline | Original Article

Immunomodulatory Effect of Doxycycline Ameliorates Systemic and Pulmonary Inflammation in a Murine Polymicrobial Sepsis Model

Authors: Anasuya Patel, Hemant Khande, Hariharan Periasamy, Santosh Mokale

Published in: Inflammation | Issue 3/2020

Login to get access

Abstract

Acute lung injury is an inflammatory condition developed after severe sepsis in response to excessive secretion of pro-inflammatory cytokines. Doxycycline is widely reported to possess immunomodulatory activity through inhibition of various inflammatory pathways. Considering the broad spectrum of anti-inflammatory activity, protective effect of doxycycline was evaluated in clinically relevant murine polymicrobial sepsis model induced by caecal ligation and puncture (CLP). In this model, sepsis is accompanied with infection and therefore ceftriaxone at sub-protective dose was combined to retard the bacterial growth. Three hours after CLP challenge, mice were administered vehicle, ceftriaxone (100 mg/kg subcutaneously) alone and in combination with immunomodulatory dose of doxycycline (50 mg/kg, intraperitoneal) and survival were monitored for 5 days. Bacterial count in blood and peritoneal fluid along with cytokines [interleukin (IL)-6, IL-1β, tumour necrosis factor (TNF)-α] and myeloperoxidase (MPO) in plasma and lung homogenate were measured at 18 h post-CLP. Plasma glutathione (GSH) was also determined. Doxycycline in presence of ceftriaxone improved survival of septic mice by significantly reducing the plasma and lung pro-inflammatory cytokines and MPO levels. It also increased plasma GSH levels. Doxycycline did not improve antibacterial effect of ceftriaxone in combination, suggesting that the protective effect of doxycycline was due to its immunomodulatory activity. Doxycycline in the presence of ceftriaxone demonstrated improved survival of septic mice by modulating the immune response.
Literature
1.
go back to reference Varisco, B.M. 2011. The pharmacology of acute lung injury in sepsis. Advances in Pharmacological Sciences 2011: 254619.CrossRef Varisco, B.M. 2011. The pharmacology of acute lung injury in sepsis. Advances in Pharmacological Sciences 2011: 254619.CrossRef
2.
go back to reference Kim, W.Y., and S.B. Hong. 2016. Sepsis and acute respiratory distress syndrome: recent update. Tuberculosis Respiratory Disease 79: 53–57.CrossRef Kim, W.Y., and S.B. Hong. 2016. Sepsis and acute respiratory distress syndrome: recent update. Tuberculosis Respiratory Disease 79: 53–57.CrossRef
3.
go back to reference Fahmi, A.N.A., G.S.G. Shehatou, and H.A. Salem. 2018. Levocetirizine pretreatment mitigates lipopolysaccharide-induced lung inflammation in rats. BioMed Research International 2018: 7019759.CrossRef Fahmi, A.N.A., G.S.G. Shehatou, and H.A. Salem. 2018. Levocetirizine pretreatment mitigates lipopolysaccharide-induced lung inflammation in rats. BioMed Research International 2018: 7019759.CrossRef
4.
go back to reference Aziz, M., A. Jacob, W.L. Yang, A. Matsuda, and P. Wang. 2013. Current trends in inflammatory and immunomodulatory mediators in sepsis. Journal of Leukocyte Biology 93: 329–342.CrossRef Aziz, M., A. Jacob, W.L. Yang, A. Matsuda, and P. Wang. 2013. Current trends in inflammatory and immunomodulatory mediators in sepsis. Journal of Leukocyte Biology 93: 329–342.CrossRef
5.
go back to reference Cavaillon, J.M., M. Adib-Conquy, C. Fitting, C. Adrie, and D. Payen. 2003. Cytokine cascade in sepsis. Scandinavian Journal of Infectious Diseases 35: 535–544.CrossRef Cavaillon, J.M., M. Adib-Conquy, C. Fitting, C. Adrie, and D. Payen. 2003. Cytokine cascade in sepsis. Scandinavian Journal of Infectious Diseases 35: 535–544.CrossRef
6.
go back to reference Harsha, N., P. Shuyu, and K. Cuk-Seong. 2018. Role of mitochondrial oxidative stress in sepsis. Acute and Critical Care 33: 65–72.CrossRef Harsha, N., P. Shuyu, and K. Cuk-Seong. 2018. Role of mitochondrial oxidative stress in sepsis. Acute and Critical Care 33: 65–72.CrossRef
7.
go back to reference Zhang, J., J. Bi, S. Liu, Q. Pang, R. Zhang, S. Wang, and C. Liu. 2017. 5-HT drives mortality in sepsis induced by cecal ligation and puncture in mice. Mediators of Inflammation 2017: 1-12. Zhang, J., J. Bi, S. Liu, Q. Pang, R. Zhang, S. Wang, and C. Liu. 2017. 5-HT drives mortality in sepsis induced by cecal ligation and puncture in mice. Mediators of Inflammation 2017: 1-12.
8.
go back to reference Steckert, A.V., A.A. de Castro, J. Quevedo, and Dal-Pizzol. 2014. Sepsis in the central nervous system and antioxidant strategies with N-acetylcysteine, vitamins and statins. Current Neurovascular Research 11: 83–90.CrossRef Steckert, A.V., A.A. de Castro, J. Quevedo, and Dal-Pizzol. 2014. Sepsis in the central nervous system and antioxidant strategies with N-acetylcysteine, vitamins and statins. Current Neurovascular Research 11: 83–90.CrossRef
9.
go back to reference Ng, H.H., T. Narasaraju, M.C. Phoon, M.K. Sim, J.E. Seet, and V.T. Chow. 2012. Doxycycline treatment attenuates acute lung injury in mice infected with virulent influenza H3N2 virus: involvement of matrix metalloproteinases. Experimental and Molecular Pathology 92: 287–295.CrossRef Ng, H.H., T. Narasaraju, M.C. Phoon, M.K. Sim, J.E. Seet, and V.T. Chow. 2012. Doxycycline treatment attenuates acute lung injury in mice infected with virulent influenza H3N2 virus: involvement of matrix metalloproteinases. Experimental and Molecular Pathology 92: 287–295.CrossRef
10.
go back to reference Davey, A., D.F. McAuley, and C.M. O’Kane. 2011. Matrix metalloproteinases in acute lung injury: mediators of injury and drivers of repair. European Respiratory Journal 38: 959–970.CrossRef Davey, A., D.F. McAuley, and C.M. O’Kane. 2011. Matrix metalloproteinases in acute lung injury: mediators of injury and drivers of repair. European Respiratory Journal 38: 959–970.CrossRef
11.
go back to reference Hutchins, N.A., J. Unsinger, R.S. Hotchkiss, and A. Ayala. 2014. The new normal: immuno-modulatory agents against sepsis immune suppression. Trends in Molecular Medicine 20: 224–233.CrossRef Hutchins, N.A., J. Unsinger, R.S. Hotchkiss, and A. Ayala. 2014. The new normal: immuno-modulatory agents against sepsis immune suppression. Trends in Molecular Medicine 20: 224–233.CrossRef
12.
go back to reference Pasquale, R., and S. Tan. 2005. Nonantimicrobial effects of antibacterial agents. Clinical Infectious Diseases 40: 127–135.CrossRef Pasquale, R., and S. Tan. 2005. Nonantimicrobial effects of antibacterial agents. Clinical Infectious Diseases 40: 127–135.CrossRef
13.
go back to reference Shapira, L., W.A. Soskolne, Y. Houri, V. Barak, A. Halabi, and A. Stabholz. 1996. Protection against endotoxic shock and lipopolysaccharide- induced local inflammation by tetracycline: correlation with inhibition of cytokine secretion. Infection and Immunity 64: 825–828.CrossRef Shapira, L., W.A. Soskolne, Y. Houri, V. Barak, A. Halabi, and A. Stabholz. 1996. Protection against endotoxic shock and lipopolysaccharide- induced local inflammation by tetracycline: correlation with inhibition of cytokine secretion. Infection and Immunity 64: 825–828.CrossRef
14.
go back to reference Sapadin, A.N., and R. Fleischmajer. 2006. Tetracyclines: nonantibiotic properties and their clinical implications. Journal of the American Academy of Dermatology 54: 258–265.CrossRef Sapadin, A.N., and R. Fleischmajer. 2006. Tetracyclines: nonantibiotic properties and their clinical implications. Journal of the American Academy of Dermatology 54: 258–265.CrossRef
15.
go back to reference Milano, S., F. Arcoleo, P. D’Agostino, and E. Cillari. 1997. Intraperitoneal injection of tetracyclines protects mice from lethal endotoxemia downregulating inducible nitric oxide synthase in various organs and cytokine and nitrate secretion in blood. Antimicrobial Agents and Chemotherapy 41: 117–121.CrossRef Milano, S., F. Arcoleo, P. D’Agostino, and E. Cillari. 1997. Intraperitoneal injection of tetracyclines protects mice from lethal endotoxemia downregulating inducible nitric oxide synthase in various organs and cytokine and nitrate secretion in blood. Antimicrobial Agents and Chemotherapy 41: 117–121.CrossRef
16.
go back to reference D’Agostino, P., M. La Rosa, C. Barbera, F. Arcoleo, G. Di Bella, S. Milano, and E. Cillari. 1998. Doxycycline reduces mortality to lethal endotoxemia by reducing nitric oxide synthesis via an interleukin-10-independent mechanism. Journal of Infectious Diseases 177: 489–492.CrossRef D’Agostino, P., M. La Rosa, C. Barbera, F. Arcoleo, G. Di Bella, S. Milano, and E. Cillari. 1998. Doxycycline reduces mortality to lethal endotoxemia by reducing nitric oxide synthesis via an interleukin-10-independent mechanism. Journal of Infectious Diseases 177: 489–492.CrossRef
17.
go back to reference Sun, J., H. Shigemi, Y. Tanaka, T. Yamauchi, T. Ueda, and H. Iwasaki. 2015. Tetracyclines downregulate the production of LPS-induced cytokines and chemokines in THP-1 cells via ERK, p38, and nuclear factor-κB signaling pathways. Biochemistry and Biophysics Reports 4: 397–404.CrossRef Sun, J., H. Shigemi, Y. Tanaka, T. Yamauchi, T. Ueda, and H. Iwasaki. 2015. Tetracyclines downregulate the production of LPS-induced cytokines and chemokines in THP-1 cells via ERK, p38, and nuclear factor-κB signaling pathways. Biochemistry and Biophysics Reports 4: 397–404.CrossRef
18.
go back to reference Fujita, M., Q. Ye, H. Ouchi, E. Harada, I. Inoshima, K. Kuwano, and Y. Nakanishi. 2006. Doxycycline attenuated pulmonary fibrosis induced by bleomycin in mice. Antimicrobial Agents and Chemotherapy 50: 739–743.CrossRef Fujita, M., Q. Ye, H. Ouchi, E. Harada, I. Inoshima, K. Kuwano, and Y. Nakanishi. 2006. Doxycycline attenuated pulmonary fibrosis induced by bleomycin in mice. Antimicrobial Agents and Chemotherapy 50: 739–743.CrossRef
19.
go back to reference Muri, L., M. Perny, J. Zemp, D. Grandgirard, and S.L. Leib. 2019. Combining ceftriaxone with doxycycline and daptomycin reduces mortality, neuroinflammation, brain damage, and hearing loss in infant rat pneumococcal meningitis. Antimicrobial Agents and Chemotherapy 63: e00220–e00219.CrossRef Muri, L., M. Perny, J. Zemp, D. Grandgirard, and S.L. Leib. 2019. Combining ceftriaxone with doxycycline and daptomycin reduces mortality, neuroinflammation, brain damage, and hearing loss in infant rat pneumococcal meningitis. Antimicrobial Agents and Chemotherapy 63: e00220–e00219.CrossRef
20.
go back to reference Fredeking, T.M., J.E. Zavala-Castro, P. González-Martínez, W. Moguel-Rodríguez, E.C. Sanchez, M.J. Foster, and F.A. Diaz-Quijano. 2015. Dengue patients treated with doxycycline showed lower mortality associated to a reduction in IL-6 and TNF levels. Recent Patents on Anti-Infective Drug Discovery 10: 51–58.CrossRef Fredeking, T.M., J.E. Zavala-Castro, P. González-Martínez, W. Moguel-Rodríguez, E.C. Sanchez, M.J. Foster, and F.A. Diaz-Quijano. 2015. Dengue patients treated with doxycycline showed lower mortality associated to a reduction in IL-6 and TNF levels. Recent Patents on Anti-Infective Drug Discovery 10: 51–58.CrossRef
21.
go back to reference Dejager, L., I. Pinheiro, E. Dejonckheere, and C. Libert. 2011. Cecal ligation and puncture: the gold standard model for polymicrobial sepsis? Trends in Microbiology 19: 198–208.CrossRef Dejager, L., I. Pinheiro, E. Dejonckheere, and C. Libert. 2011. Cecal ligation and puncture: the gold standard model for polymicrobial sepsis? Trends in Microbiology 19: 198–208.CrossRef
22.
go back to reference Remick, D.G., D.E. Newcomb, G.L. Bolgos, and D.R. Call. 2000. Comparison of the mortality and inflammatory response of two models of sepsis: lipopolysaccharide vs cecal ligation and puncture. Shock 13: 110–116.CrossRef Remick, D.G., D.E. Newcomb, G.L. Bolgos, and D.R. Call. 2000. Comparison of the mortality and inflammatory response of two models of sepsis: lipopolysaccharide vs cecal ligation and puncture. Shock 13: 110–116.CrossRef
23.
go back to reference Patel, A., J. Joseph, H. Periasamy, and S. Mokale. 2018. Azithromycin in combination with ceftriaxone reduces systemic inflammation and provides survival benefit in a murine model of polymicrobial sepsis. Antimicrobial Agents and Chemotherapy 62: e00752–e00718.CrossRef Patel, A., J. Joseph, H. Periasamy, and S. Mokale. 2018. Azithromycin in combination with ceftriaxone reduces systemic inflammation and provides survival benefit in a murine model of polymicrobial sepsis. Antimicrobial Agents and Chemotherapy 62: e00752–e00718.CrossRef
24.
go back to reference Ebong, S., D. Call, J. Nemzek, G. Bolgos, D. Newcomb, and D. Remick. 1999. Immunopathologic alterations in murine models of sepsis of increasing severity. Infection and Immunity 67: 6603–6610.CrossRef Ebong, S., D. Call, J. Nemzek, G. Bolgos, D. Newcomb, and D. Remick. 1999. Immunopathologic alterations in murine models of sepsis of increasing severity. Infection and Immunity 67: 6603–6610.CrossRef
25.
go back to reference Won-Young, K., and H. Sang-Bum. 2016. Sepsis and acute respiratory distress syndrome: recent update. Tuberculosis Respiratory Disease (Seoul) 79: 53–57.CrossRef Won-Young, K., and H. Sang-Bum. 2016. Sepsis and acute respiratory distress syndrome: recent update. Tuberculosis Respiratory Disease (Seoul) 79: 53–57.CrossRef
26.
go back to reference Wibke, S., B. Jürgen, and B. Richard. 2013. Cytokines in sepsis: potent immunoregulators and potential therapeutic targets—an updated view. Mediators of Inflammation 2013: 165974. Wibke, S., B. Jürgen, and B. Richard. 2013. Cytokines in sepsis: potent immunoregulators and potential therapeutic targets—an updated view. Mediators of Inflammation 2013: 165974.
27.
go back to reference Fjell, C.D., S. Thair, J.L. Hsu, K.R. Walley, J.A. Russell, and J. Boyd. 2013. Cytokines and signalling molecules predict clinical outcomes in sepsis. PLoS One 8: e79207.CrossRef Fjell, C.D., S. Thair, J.L. Hsu, K.R. Walley, J.A. Russell, and J. Boyd. 2013. Cytokines and signalling molecules predict clinical outcomes in sepsis. PLoS One 8: e79207.CrossRef
28.
go back to reference Sener, G., H. Toklu, C. Kapucu, F. Ercan, G. Erkanli, A. Kaçmaz, M. Tilki, and B.C. Yeğen. 2005. Melatonin protects against oxidative organ injury in a rat model of sepsis. Surgery Today 35: 52–59.CrossRef Sener, G., H. Toklu, C. Kapucu, F. Ercan, G. Erkanli, A. Kaçmaz, M. Tilki, and B.C. Yeğen. 2005. Melatonin protects against oxidative organ injury in a rat model of sepsis. Surgery Today 35: 52–59.CrossRef
29.
go back to reference Haegens, A., J.H. Vernooy, P. Heeringa, B.T. Mossman, and E.F. Wouters. 2008. Myeloperoxidase modulates lung epithelial responses to pro-inflammatory agents. The European Respiratory Journal 31: 252–260.CrossRef Haegens, A., J.H. Vernooy, P. Heeringa, B.T. Mossman, and E.F. Wouters. 2008. Myeloperoxidase modulates lung epithelial responses to pro-inflammatory agents. The European Respiratory Journal 31: 252–260.CrossRef
30.
go back to reference Villa, P., A. Saccani, A. Sica, and P. Ghezzi. 2002. Glutathione protects mice from lethal sepsis by limiting inflammation and potentiating host defense. The Journal of Infectious Diseases 185: 1115–1120.CrossRef Villa, P., A. Saccani, A. Sica, and P. Ghezzi. 2002. Glutathione protects mice from lethal sepsis by limiting inflammation and potentiating host defense. The Journal of Infectious Diseases 185: 1115–1120.CrossRef
Metadata
Title
Immunomodulatory Effect of Doxycycline Ameliorates Systemic and Pulmonary Inflammation in a Murine Polymicrobial Sepsis Model
Authors
Anasuya Patel
Hemant Khande
Hariharan Periasamy
Santosh Mokale
Publication date
01-06-2020
Publisher
Springer US
Published in
Inflammation / Issue 3/2020
Print ISSN: 0360-3997
Electronic ISSN: 1573-2576
DOI
https://doi.org/10.1007/s10753-020-01188-y

Other articles of this Issue 3/2020

Inflammation 3/2020 Go to the issue
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

Highlights from the ACC 2024 Congress

Year in Review: Pediatric cardiology

Watch Dr. Anne Marie Valente present the last year's highlights in pediatric and congenital heart disease in the official ACC.24 Year in Review session.

Year in Review: Pulmonary vascular disease

The last year's highlights in pulmonary vascular disease are presented by Dr. Jane Leopold in this official video from ACC.24.

Year in Review: Valvular heart disease

Watch Prof. William Zoghbi present the last year's highlights in valvular heart disease from the official ACC.24 Year in Review session.

Year in Review: Heart failure and cardiomyopathies

Watch this official video from ACC.24. Dr. Biykem Bozkurt discuss last year's major advances in heart failure and cardiomyopathies.