OBJECTIVES: One of the hallmarks of severe pneumonia and associated acute lung injury is neutrophil recruitment to the lung. Leptin is thought to be up-regulated in the lung following injury and to exert diverse effects on leukocytes, influencing both chemotaxis and survival. We hypothesized that pulmonary leptin contributes directly to the development of pulmonary neutrophilia during pneumonia and acute lung injury. DESIGN: Controlled human and murine in vivo and ex vivo experimental studies. SETTING: Research laboratory of a university hospital. SUBJECTS: Healthy human volunteers and subjects hospitalized with bacterial and H1N1 pneumonia. C57Bl/6 and db/db mice were also used. INTERVENTIONS: Lung samples from patients and mice with either bacterial or H1N1 pneumonia and associated acute lung injury were immunostained for leptin. Human bronchoalveolar lavage samples obtained after lipopolysaccharide-induced lung injury were assayed for leptin. C57Bl/6 mice were examined after oropharyngeal aspiration of recombinant leptin alone or in combination with Escherichia coli- or Klebsiella pneumoniae-induced pneumonia. Leptin-resistant (db/db) mice were also examined using the E. coli model. Bronchoalveolar lavage neutrophilia and cytokine levels were measured. Leptin-induced chemotaxis was examined in human blood- and murine marrow-derived neutrophils in vitro. MEASUREMENTS AND MAIN RESULTS: Injured human and murine lung tissue showed leptin induction compared to normal lung, as did human bronchoalveolar lavage following lipopolysaccharide instillation. Bronchoalveolar lavage neutrophilia in uninjured and infected mice was increased and lung bacterial load decreased by airway leptin administration, whereas bronchoalveolar lavage neutrophilia in infected leptin-resistant mice was decreased. In sterile lung injury by lipopolysaccharide, leptin also appeared to decrease airspace neutrophil apoptosis. Both human and murine neutrophils migrated toward leptin in vitro, and this required intact signaling through the Janus Kinase 2/phosphatidylinositol-4,5-bisphosphate 3-kinase pathway. CONCLUSIONS: We demonstrate that pulmonary leptin is induced in injured human and murine lungs and that this cytokine is effective in driving alveolar airspace neutrophilia. This action appears to be caused by direct effects of leptin on neutrophils.
OBJECTIVES: One of the hallmarks of severe pneumonia and associated acute lung injury is neutrophil recruitment to the lung. Leptin is thought to be up-regulated in the lung following injury and to exert diverse effects on leukocytes, influencing both chemotaxis and survival. We hypothesized that pulmonary leptin contributes directly to the development of pulmonary neutrophilia during pneumonia and acute lung injury. DESIGN: Controlled human and murine in vivo and ex vivo experimental studies. SETTING: Research laboratory of a university hospital. SUBJECTS: Healthy human volunteers and subjects hospitalized with bacterial and H1N1pneumonia. C57Bl/6 and db/db mice were also used. INTERVENTIONS: Lung samples from patients and mice with either bacterial or H1N1pneumonia and associated acute lung injury were immunostained for leptin. Human bronchoalveolar lavage samples obtained after lipopolysaccharide-induced lung injury were assayed for leptin. C57Bl/6 mice were examined after oropharyngeal aspiration of recombinant leptin alone or in combination with Escherichia coli- or Klebsiella pneumoniae-induced pneumonia. Leptin-resistant (db/db) mice were also examined using the E. coli model. Bronchoalveolar lavage neutrophilia and cytokine levels were measured. Leptin-induced chemotaxis was examined in human blood- and murine marrow-derived neutrophils in vitro. MEASUREMENTS AND MAIN RESULTS: Injured human and murine lung tissue showed leptin induction compared to normal lung, as did human bronchoalveolar lavage following lipopolysaccharide instillation. Bronchoalveolar lavage neutrophilia in uninjured and infected mice was increased and lung bacterial load decreased by airway leptin administration, whereas bronchoalveolar lavage neutrophilia in infected leptin-resistant mice was decreased. In sterile lung injury by lipopolysaccharide, leptin also appeared to decrease airspace neutrophil apoptosis. Both human and murine neutrophils migrated toward leptin in vitro, and this required intact signaling through the Janus Kinase 2/phosphatidylinositol-4,5-bisphosphate 3-kinase pathway. CONCLUSIONS: We demonstrate that pulmonary leptin is induced in injured human and murine lungs and that this cytokine is effective in driving alveolar airspace neutrophilia. This action appears to be caused by direct effects of leptin on neutrophils.
Authors: C Barazzone-Argiroffo; P Muzzin; Y R Donati; C D Kan; M L Aubert; P F Piguet Journal: Am J Physiol Lung Cell Mol Physiol Date: 2001-11 Impact factor: 5.464
Authors: Peter Mancuso; Andrew Gottschalk; Susan M Phare; Marc Peters-Golden; Nicholas W Lukacs; Gary B Huffnagle Journal: J Immunol Date: 2002-04-15 Impact factor: 5.422
Authors: Joseph P Mizgerd; Michal M Lupa; Mariya S Kogan; Henry B Warren; Lester Kobzik; George P Topulos Journal: Am J Respir Crit Care Med Date: 2003-07-11 Impact factor: 21.405
Authors: H Zarkesh-Esfahani; G Pockley; R A Metcalfe; M Bidlingmaier; Z Wu; A Ajami; A P Weetman; C J Strasburger; R J Ross Journal: J Immunol Date: 2001-10-15 Impact factor: 5.422
Authors: Michael R Wilson; Joanne E Petrie; Michael W Shaw; Cong Hu; Charlotte M Oakley; Samantha J Woods; Brijesh V Patel; Kieran P O'Dea; Masao Takata Journal: Crit Care Med Date: 2017-08 Impact factor: 7.598
Authors: Michaela R Anderson; Jayaram K Udupa; Ethan Edwin; Joshua M Diamond; Jonathan P Singer; Jasleen Kukreja; Steven R Hays; John R Greenland; Anthony Ferrante; Matthew Lippel; Tatiana Blue; Amika McBurnie; Michelle Oyster; Laurel Kalman; Melanie Rushefski; Caiyun Wu; Gargi Pednekar; Wen Liu; Selim Arcasoy; Joshua Sonett; Frank D'Ovidio; Matthew Bacchetta; John D Newell; Drew Torigian; Edward Cantu; Donna L Farber; Jon T Giles; Yubing Tong; Scott Palmer; Lorraine B Ware; Wayne W Hancock; Jason D Christie; David J Lederer Journal: J Heart Lung Transplant Date: 2019-08-10 Impact factor: 10.247
Authors: Niki D J Ubags; Renee D Stapleton; Juanita H J Vernooy; Elianne Burg; Jenna Bement; Catherine M Hayes; Sebastian Ventrone; Lennart Zabeau; Jan Tavernier; Matthew E Poynter; Polly E Parsons; Anne E Dixon; Matthew J Wargo; Benjamin Littenberg; Emiel F M Wouters; Benjamin T Suratt Journal: JCI Insight Date: 2016-06-02
Authors: Niki D J Ubags; Elianne Burg; Maryellen Antkowiak; Aaron M Wallace; Estee Dilli; Jenna Bement; Matthew J Wargo; Matthew E Poynter; Emiel F M Wouters; Benjamin T Suratt Journal: Am J Respir Cell Mol Biol Date: 2016-08 Impact factor: 6.914
Authors: Michaela R Anderson; John S Kim; Matthew Allison; Jon T Giles; Eric A Hoffman; Jingzhong Ding; R Graham Barr; Anna Podolanczuk Journal: Chest Date: 2021-04-15 Impact factor: 10.262