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LeBourdais, R.

Publications and source records attributed to LeBourdais, R..

2 recordsLinked to original sources

Alteration of mechanical stresses in the murine brain by age and hemorrhagic stroke

Residual mechanical stresses in tissues arise during rapid differential growth or remodeling such as in morphogenesis and cancer. These residual stresses, also known as solid stresses, are distinct from fluid pressures and dissipate in most healthy adult organs as the rate of growth decreases. However, studies have shown that residual stresses remain substantially high even in mature, healthy brains. The genesis and consequences of these mechanical stresses in a healthy brain, and in aging and disease remain to be explored. Here, we utilized and validated our previously developed method to map residual mechanical stresses in the brains of mice in three different age groups: 5-7 days, 8-12 weeks, and 22 months old. We found that residual solid stress increases rapidly from 5-7 days to 8-12 weeks in mice, and remains high even in mature 22-month-old mice brains. Three-dimensional mapping of the residual stresses revealed an increasing trend from anterior to posterior in coronal sections of the brain. Since the brain is rich in negatively charged hyaluronic acid, we evaluated the contribution of charged extracellular matrix (ECM) constituents in maintaining solid stress levels. We found that lower ionic strength leads to elevated solid stresses, a finding consistent with the unshielding effect of low ionic strength and the subsequent expansion of charged ECM components. Lastly, we demonstrated that hemorrhagic stroke, accompanied by loss of cellular density, resulted in decreased levels of residual stress in the murine brain. Our findings contribute to a better understanding of the spatiotemporal alteration of residual solid stresses in healthy and diseased brains, a crucial step toward uncovering the biological and immunological consequences of this understudied mechanical phenotype in the brain. Significance StatementWhile emerging evidence highlights the importance of solid stresses in embryogenesis and tumor growth, the genesis and consequences of residual solid stresses in the adult normal brain remain poorly understood. Understanding the spatiotemporal distribution and alteration of the residual solid stresses as the brain ages and is impacted by neuropathologies, such as a stroke, will elucidate the biological and immunological consequences of maintaining these stresses. This study suggests solid stress could serve as a potential biomarker in aging and diseases associated to the brain.

biophysics↗

Probing lung function at high spatiotemporal resolution using a novel crystal ribcage

Understanding the dynamic pathogenesis and treatment response in pulmonary diseases requires probing the lung at cellular resolution in real-time. Despite recent progress in intravital imaging, optical imaging of the lung during active respiration and circulation has remained challenging. Here, we introduce the crystal ribcage: a transparent ribcage that (i) allows truly multiscale optical imaging of the lung in health and disease from whole-organ to single cell, (ii) enables the modulation of lung biophysics and immunity through intravascular, intrapulmonary, intraparenchymal, and optogenetic interventions, and (iii) preserves the 3-D architecture, air-liquid interface, cellular diversity, and respiratory-circulatory functions of the lung. Utilizing these unprecedented capabilities on murine models of primary and metastatic lung tumors, respiratory infection, pulmonary fibrosis, emphysema, and acute lung injury we probed how disease progression remodels the respiratory-circulatory functions at the single alveolus and capillary levels. In cancer, we identified the earliest stage of tumorigenesis that compromises alveolar and capillary functions, a key state with consequences on tumor progression and treatment response. In pneumonia, we mapped mutual links between the recruited immune cells and the alveolar-capillary functions. We found that neutrophil migration is strongly and reversibly responsive to vascular pressure with implications for understanding of how lung physiology, altered by disease and anatomical location, affects immune cell activities. The crystal ribcage and its broad applications presented here will facilitate further studies of real-time remodeling of the alveoli and capillaries during pathogenesis of nearly any pulmonary disease, leading to the identification of new targets for treatment strategies.

bioengineering↗