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Bourque, K.

Publications and source records attributed to Bourque, K..

2 recordsLinked to original sources

Comparing the signaling and transcriptome profiling landscapes of human iPSC-derived and primary rat neonatal cardiomyocytes

The inaccessibility of human cardiomyocytes significantly hindered years of cardiovascular research efforts. Post-mortem tissue or biopsies from diseased patients, which remain scarcely available, rendered it possible to study end-stage heart disease yet the inclusion of healthy human cardiac materials for basic science research was beyond reach. To overcome these limitations, non-human cell sources were used as proxies to study heart function and associated diseases. Rodent models became increasingly acceptable surrogates to model the human heart either in vivo or through in vitro cultures. More recently, due to concerns regarding animal to human translation, including cross-species differences, the use of human inducible stem cell derived cardiomyocytes presented a renewed opportunity. We think it necessary to conduct a comparative study, assessing cellular signalling through cardiac G protein-coupled receptors and bulk transcriptomics of traditional rat neonatal cardiomyocytes and human iPSC-CMs. Genetically-encoded biosensors were used to interrogate nuclear protein kinase A (PKA) and extracellular signal-regulated kinase 1/ 2 (ERK1/2) in rat and human-derived cardiomyocyte populations. To increase data granularity, a single-cell analytical approach was conducted for an in-depth examination of existing differences between both in vitro cardiomyocyte models. Using automated high content microscopy, our analyses of nuclear PKA and ERK1/2 signaling revealed distinct response clusters in rat and human CMs. In line with this, bulk RNA-seq demonstrated key differences regarding the expression patterns of GPCRs, G proteins and effectors. Overall, our study demonstrates that human stem cell derived models of the cardiomyocyte do provide significant advantages and should be taken advantage of.

biochemistry↗

Effective use of genetically-encoded optical biosensors for profiling signalling signatures in iPSC-CMs derived from idiopathic dilated cardiomyopathy patients

Dilated cardiomyopathy (DCM) is a cardiovascular condition that develops when the left ventricle of the heart enlarges, compromising its function and diminishing its capacity to pump oxygenated blood throughout the body. After patients are diagnosed with DCM, disease progression can lead to heart failure and the need for a heart transplantation. DCM is a complex disease where underlying causes can be idiopathic, genetic, or environmental. An incomplete molecular understanding of disease progression poses challenges for drug discovery efforts as effective therapeutics strategies remain elusive. Decades of research using primary cells or animal models have increased our understanding of DCM but has been hampered due to the inaccessibility of human cardiomyocytes, to model cardiac disease, in vitro, in a dish. Here, our goal is to leverage patient-derived hiPSC-CMs and to combine them with biosensors to understand how cellular signalling is altered in DCM. With high sensitivity and versatility, optical biosensors represent the ideal tools to dissect the molecular determinants of cardiovascular disease, in an unbiased manner and in real-time at the level of single cells. By characterizing the pathobiology of dilated cardiomyopathy in a patient-specific manner using high content biosensor-based assays, we aim to uncover personalized mechanisms for the occurrence and development of DCM and as a pathway to development of personalized therapeutics.

biochemistry↗