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Decoding the molecular regulation of intussusceptive angiogenesis for therapeutic targeting

English title Decoding the molecular regulation of intussusceptive angiogenesis for therapeutic targeting
Applicant Banfi Andrea
Number 182357
Funding scheme Project funding (Div. I-III)
Research institution Departement Biomedizin Universität Basel
Institution of higher education University of Basel - BS
Main discipline Cardiovascular Research
Start/End 01.10.2018 - 30.09.2022
Approved amount 700'000.00
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All Disciplines (2)

Discipline
Cardiovascular Research
Molecular Biology

Keywords (6)

Therapeutic angiogenesis; VEGF; Intussusception; Skeletal muscle; In vivo imaging; Transcriptome

Lay Summary (Italian)

Lead
La possibilità di crescere nuovi vasi sanguigni è una strategia promettente per ristabilire la perfusione nel cuore o arti di pazienti con arterie ostruite. Tuttavia, i tentativi finora non hanno dato esito, soprattutto perché la sostanza che controlla la crescita di nuovi vasi (Vascular Endothelial Growth Factor, o VEGF) può anche causare effetti tossici, come la generazione di vasi aberranti simili a tumori, se la sua dose non è precisamene controllata. Quindi, è necessario comprendere meglio il processo di crescita dei vasi sanguigni per disegnare strategie terapeutiche razionali più efficaci e sicure.
Lay summary

Soggetto e obiettivi

L’espressione di VEGF a scopo terapeutico nel tessuto muscolare induce angiogenesi tramite un particolare meccanismo (intussuscezione), la cui regolazione e’ fondamentalmente sconosciuta, a causa della mancanza di modelli adeguati. Questo studio vuole decodificare sistematicamente la sua regolazione molecolare in condizioni terapeutiche combinando due approcci: 1) sfruttare le piu’ recenti tecniche di microscopia per visualizzare i vasi sanguigni nell’organismo vivente ad alta risoluzione, permettendo di “filmare” gli eventi mentre accadono; e 2) analizzare quali geni vengono regolati durante questo processo, tramite analisi genomica a diversi stadi durante la crescita dei vasi.

Contesto socio-scientifico

Esiste un rilevante bisogno di migliori opzioni terapeutiche per le malattie cardiovascolari ischemiche, responsabili di circa il 30% delle cause di morte mondiali. Inoltre queste condizioni croniche hanno altissimi costi per la società, in termini sia di produttività persa sia di spesa sanitaria. I risultati di questo progetto potrebbero identificare nuovi bersagli molecolari per trattare molti pazienti affetti da queste condizioni.
Direct link to Lay Summary Last update: 02.10.2018

Responsible applicant and co-applicants

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Associated projects

Number Title Start Funding scheme
163202 The molecular switch between normal and aberrant angiogenesis by VEGF 01.10.2015 Project funding (Div. I-III)
170809 Super Resolution and Endoscopic Two Photon Microscopy - Imaging of Cell Migration in Inflammation, Metastasis and Regeneration 01.01.2017 R'EQUIP

Abstract

Background. Ischemic cardiovascular disease is the most common cause of death in the Western world and, despite advances in medical and surgical therapy, the morbidity and mortality remain very high. Therapeutic angiogenesis aims to induce the formation of new blood vessels to improve the perfusion of ischemic tissue in patients with end-stage coronary artery or peripheral arterial disease that are not amenable to other treatment options. Vascular Endothelial Growth Factor-A (VEGF) is the master regulator of vascular growth and it has been tested clinically with a variety of delivery methods. However, the results of placebo-controlled clinical trials have been disappointing and yielded mostly negative results. Retrospective analyses showed that the effects of VEGF can be deleterious if uncontrolled, and achieving therapeutic efficacy with VEGF gene delivery at safe vector doses has proven particularly challenging, despite the exquisite biological potency of the factor. Therefore, there is a clear need to better understand the molecular and cellular mechanisms regulating vascular growth under therapeutically relevant conditions of VEGF delivery.Rationale. We previously found that VEGF induces normal or aberrant angiogenesis depending on its concentration in the microenvironment around each producing cell in vivo, rather than on the total delivered dose. Our results in the previous funding period show that: 1) VEGF delivery to skeletal muscle at therapeutically relevant doses induces angiogenesis by the mechanism of intussusception rather than by the well-studied process of sprouting; and 2) the regulation of VEGF-induced intussusceptive angiogenesis is likely fundamentally different from that of sprouting, with divergent therapeutic consequences. Yet, the molecular mechanisms of intussusception remain poorly understood compared to the regulation of sprouting, mainly due to a paucity of appropriate models.Specific aims. Here we propose to systematically investigate the molecular regulation of intussusceptive angiogenesis in skeletal muscle (the tissue affected by peripheral artery disease) under therapeutically relevant conditions of angiogenic factor delivery. Specifically, we aim to: 1) establish a platform for high-resolution in vivo imaging of intussusceptive angiogenesis in skeletal muscle by 2-photon microscopy; 2) systematically investigate its molecular regulation by a stage-specific and VEGF dose-dependent unbiased analysis of the vascular transcriptome; and 3) elucidate the function of the identified signaling pathways by loss-of-function and gain-of-function experiments.Experimental design. Monoclonal populations of retrovirally transduced myoblast, which homogeneously secrete different amounts of VEGF, or a highly controlled fibrin-based platform for protein delivery, will be used to deliver specific VEGF doses in skeletal muscle.Expected value of the proposed project. The experiments proposed are expected to provide much-needed fundamental insight into the mechanisms of therapeutic intussusception, as well as a rational basis for the design of future treatment strategies.
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