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1.
Am J Respir Crit Care Med ; 198(4): 472-485, 2018 08 15.
Artigo em Inglês | MEDLINE | ID: mdl-29578749

RESUMO

RATIONALE: Diaphragm weakness in critically ill patients prolongs ventilator dependency and duration of hospital stay and increases mortality and healthcare costs. The mechanisms underlying diaphragm weakness include cross-sectional fiber atrophy and contractile protein dysfunction, but whether additional mechanisms are at play is unknown. OBJECTIVES: To test the hypothesis that mechanical ventilation with positive end-expiratory pressure (PEEP) induces longitudinal atrophy by displacing the diaphragm in the caudal direction and reducing the length of fibers. METHODS: We studied structure and function of diaphragm fibers of mechanically ventilated critically ill patients and mechanically ventilated rats with normal and increased titin compliance. MEASUREMENTS AND MAIN RESULTS: PEEP causes a caudal movement of the diaphragm, both in critically ill patients and in rats, and this caudal movement reduces fiber length. Diaphragm fibers of 18-hour mechanically ventilated rats (PEEP of 2.5 cm H2O) adapt to the reduced length by absorbing serially linked sarcomeres, the smallest contractile units in muscle (i.e., longitudinal atrophy). Increasing the compliance of titin molecules reduces longitudinal atrophy. CONCLUSIONS: Mechanical ventilation with PEEP results in longitudinal atrophy of diaphragm fibers, a response that is modulated by the elasticity of the giant sarcomeric protein titin. We postulate that longitudinal atrophy, in concert with the aforementioned cross-sectional atrophy, hampers spontaneous breathing trials in critically ill patients: during these efforts, end-expiratory lung volume is reduced, and the shortened diaphragm fibers are stretched to excessive sarcomere lengths. At these lengths, muscle fibers generate less force, and diaphragm weakness ensues.


Assuntos
Diafragma/patologia , Atrofia Muscular/etiologia , Atrofia Muscular/patologia , Respiração com Pressão Positiva/efeitos adversos , Adulto , Idoso , Idoso de 80 Anos ou mais , Animais , Biópsia , Diafragma/diagnóstico por imagem , Modelos Animais de Doenças , Feminino , Humanos , Masculino , Pessoa de Meia-Idade , Atrofia Muscular/diagnóstico por imagem , Ratos , Ultrassonografia
2.
Am J Respir Crit Care Med ; 196(12): 1544-1558, 2017 12 15.
Artigo em Inglês | MEDLINE | ID: mdl-28787181

RESUMO

RATIONALE: The clinical significance of diaphragm weakness in critically ill patients is evident: it prolongs ventilator dependency and increases morbidity, duration of hospital stay, and health care costs. The mechanisms underlying diaphragm weakness are unknown, but might include mitochondrial dysfunction and oxidative stress. OBJECTIVES: We hypothesized that weakness of diaphragm muscle fibers in critically ill patients is accompanied by impaired mitochondrial function and structure, and by increased markers of oxidative stress. METHODS: To test these hypotheses, we studied contractile force, mitochondrial function, and mitochondrial structure in diaphragm muscle fibers. Fibers were isolated from diaphragm biopsies of 36 mechanically ventilated critically ill patients and compared with those isolated from biopsies of 27 patients with suspected early-stage lung malignancy (control subjects). MEASUREMENTS AND MAIN RESULTS: Diaphragm muscle fibers from critically ill patients displayed significant atrophy and contractile weakness, but lacked impaired mitochondrial respiration and increased levels of oxidative stress markers. Mitochondrial energy status and morphology were not altered, despite a lower content of fusion proteins. CONCLUSIONS: Critically ill patients have manifest diaphragm muscle fiber atrophy and weakness in the absence of mitochondrial dysfunction and oxidative stress. Thus, mitochondrial dysfunction and oxidative stress do not play a causative role in the development of atrophy and contractile weakness of the diaphragm in critically ill patients.


Assuntos
Diafragma/fisiopatologia , Mitocôndrias , Debilidade Muscular/fisiopatologia , Atrofia Muscular/fisiopatologia , Estresse Oxidativo , Adulto , Idoso , Biópsia , Estado Terminal , Feminino , Humanos , Pulmão/patologia , Masculino , Pessoa de Meia-Idade , Respiração Artificial , Adulto Jovem
3.
Am J Physiol Lung Cell Mol Physiol ; 311(1): L20-8, 2016 07 01.
Artigo em Inglês | MEDLINE | ID: mdl-27190061

RESUMO

Patients with pulmonary hypertension (PH) suffer from inspiratory muscle weakness. However, the pathophysiology of inspiratory muscle dysfunction in PH is unknown. We hypothesized that weakness of the diaphragm, the main inspiratory muscle, is an important contributor to inspiratory muscle dysfunction in PH patients. Our objective was to combine ex vivo diaphragm muscle fiber contractility measurements with measures of in vivo inspiratory muscle function in chronic thromboembolic pulmonary hypertension (CTEPH) patients. To assess diaphragm muscle contractility, function was studied in vivo by maximum inspiratory pressure (MIP) and ex vivo in diaphragm biopsies of the same CTEPH patients (N = 13) obtained during pulmonary endarterectomy. Patients undergoing elective lung surgery served as controls (N = 15). Muscle fiber cross-sectional area (CSA) was determined in cryosections and contractility in permeabilized muscle fibers. Diaphragm muscle fiber CSA was not significantly different between control and CTEPH patients in both slow-twitch and fast-twitch fibers. Maximal force-generating capacity was significantly lower in slow-twitch muscle fibers of CTEPH patients, whereas no difference was observed in fast-twitch muscle fibers. The maximal force of diaphragm muscle fibers correlated significantly with MIP. The calcium sensitivity of force generation was significantly reduced in fast-twitch muscle fibers of CTEPH patients, resulting in a ∼40% reduction of submaximal force generation. The fast skeletal troponin activator CK-2066260 (5 µM) restored submaximal force generation to levels exceeding those observed in control subjects. In conclusion, diaphragm muscle fiber contractility is hampered in CTEPH patients and contributes to the reduced function of the inspiratory muscles in CTEPH patients.


Assuntos
Diafragma/fisiopatologia , Hipertensão Pulmonar/fisiopatologia , Idoso , Sinalização do Cálcio , Diafragma/patologia , Feminino , Humanos , Masculino , Pessoa de Meia-Idade , Contração Muscular , Fibras Musculares de Contração Rápida/fisiologia , Fibras Musculares de Contração Lenta/fisiologia , Debilidade Muscular , Embolia Pulmonar/fisiopatologia
4.
Am J Respir Crit Care Med ; 191(10): 1126-38, 2015 May 15.
Artigo em Inglês | MEDLINE | ID: mdl-25760684

RESUMO

RATIONALE: The clinical significance of diaphragm weakness in critically ill patients is evident: it prolongs ventilator dependency, and increases morbidity and duration of hospital stay. To date, the nature of diaphragm weakness and its underlying pathophysiologic mechanisms are poorly understood. OBJECTIVES: We hypothesized that diaphragm muscle fibers of mechanically ventilated critically ill patients display atrophy and contractile weakness, and that the ubiquitin-proteasome pathway is activated in the diaphragm. METHODS: We obtained diaphragm muscle biopsies from 22 critically ill patients who received mechanical ventilation before surgery and compared these with biopsies obtained from patients during thoracic surgery for resection of a suspected early lung malignancy (control subjects). In a proof-of-concept study in a muscle-specific ring finger protein-1 (MuRF-1) knockout mouse model, we evaluated the role of the ubiquitin-proteasome pathway in the development of contractile weakness during mechanical ventilation. MEASUREMENTS AND MAIN RESULTS: Both slow- and fast-twitch diaphragm muscle fibers of critically ill patients had approximately 25% smaller cross-sectional area, and had contractile force reduced by half or more. Markers of the ubiquitin-proteasome pathway were significantly up-regulated in the diaphragm of critically ill patients. Finally, MuRF-1 knockout mice were protected against the development of diaphragm contractile weakness during mechanical ventilation. CONCLUSIONS: These findings show that diaphragm muscle fibers of critically ill patients display atrophy and severe contractile weakness, and in the diaphragm of critically ill patients the ubiquitin-proteasome pathway is activated. This study provides rationale for the development of treatment strategies that target the contractility of diaphragm fibers to facilitate weaning.


Assuntos
Estado Terminal , Diafragma/fisiopatologia , Debilidade Muscular/fisiopatologia , Atrofia Muscular/fisiopatologia , Complexo de Endopeptidases do Proteassoma/metabolismo , Respiração Artificial/efeitos adversos , Ubiquitina/metabolismo , Adulto , Idoso , Idoso de 80 Anos ou mais , Animais , Biópsia , Western Blotting , Estudos de Casos e Controles , Diafragma/patologia , Modelos Animais de Doenças , Feminino , Humanos , Tempo de Internação , Masculino , Camundongos , Camundongos Knockout , Pessoa de Meia-Idade , Fibras Musculares Esqueléticas/metabolismo , Fibras Musculares Esqueléticas/patologia , Proteínas Musculares , Debilidade Muscular/etiologia , Debilidade Muscular/patologia , Atrofia Muscular/etiologia , Atrofia Muscular/patologia , Países Baixos , Proteínas com Motivo Tripartido , Ubiquitina-Proteína Ligases , Adulto Jovem
5.
Am J Physiol Lung Cell Mol Physiol ; 307(6): L460-70, 2014 Sep 15.
Artigo em Inglês | MEDLINE | ID: mdl-25038190

RESUMO

Several studies have indicated that diaphragm dysfunction develops in patients on mechanical ventilation (MV). Here, we tested the hypothesis that the contractility of sarcomeres, i.e., the smallest contractile unit in muscle, is affected in humans on MV. To this end, we compared diaphragm muscle fibers of nine brain-dead organ donors (cases) that had been on MV for 26 ± 5 h with diaphragm muscle fibers from nine patients (controls) undergoing surgery for lung cancer that had been on MV for less than 2 h. In each diaphragm specimen we determined 1) muscle fiber cross-sectional area in cryosections by immunohistochemical methods and 2) the contractile performance of permeabilized single muscle fibers by means of maximum specific force, kinetics of cross-bridge cycling by rate of tension redevelopment, myosin heavy chain content and concentration, and calcium sensitivity of force of slow-twitch and fast-twitch muscle fibers. In case subjects, we noted no statistically significant decrease in outcomes compared with controls in slow-twitch or fast-twitch muscle fibers. These observations indicate that 26 h of MV of humans is not invariably associated with changes in the contractile performance of sarcomeres in the diaphragm.


Assuntos
Diafragma/fisiopatologia , Contração Muscular , Fibras Musculares de Contração Rápida , Fibras Musculares de Contração Lenta , Respiração Artificial , Adolescente , Adulto , Idoso , Morte Encefálica/fisiopatologia , Feminino , Humanos , Masculino , Pessoa de Meia-Idade
6.
J Gen Physiol ; 153(7)2021 07 05.
Artigo em Inglês | MEDLINE | ID: mdl-34152365

RESUMO

Muscle ankyrin repeat protein 1 (MARP1) is frequently up-regulated in stressed muscle, but its effect on skeletal muscle function is poorly understood. Here, we focused on its interaction with the titin-N2A element, found in titin's molecular spring region. We show that MARP1 binds to F-actin, and that this interaction is stronger when MARP1 forms a complex with titin-N2A. Mechanics and super-resolution microscopy revealed that MARP1 "locks" titin-N2A to the sarcomeric thin filament, causing increased extension of titin's elastic PEVK element and, importantly, increased passive force. In support of this mechanism, removal of thin filaments abolished the effect of MARP1 on passive force. The clinical relevance of this mechanism was established in diaphragm myofibers of mechanically ventilated rats and of critically ill patients. Thus, MARP1 regulates passive force by locking titin to the thin filament. We propose that in stressed muscle, this mechanism protects the sarcomere from mechanical damage.


Assuntos
Repetição de Anquirina , Conectina/metabolismo , Sarcômeros , Animais , Conectina/genética , Humanos , Proteínas Musculares/genética , Proteínas Musculares/metabolismo , Músculo Esquelético/metabolismo , Proteínas Nucleares , Ratos , Proteínas Repressoras , Sarcômeros/metabolismo
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