Vince Grolmusz

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Eötvös Loránd University
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Hungary

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Recent Grants

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Developing artificial intelligence tools for solving bionformatical problems

Open Date: 2019-01-01

Close Date: 2022-01-01

Grant: Close

Developing metagenomic methods for bioremediation of PAH-contaminated soils

Open Date: 2018-01-01

Close Date: 2021-01-01

Grant: Close

Mathematical analysis of biological graphs

Open Date: 2017-12-01

Close Date: 2019-11-30

Grant: Close

Development of biocompatible nano- and mesosystems through amyloid-fiber production

Open Date: 2017-01-01

Close Date: 2021-01-01

Grant: Close

Detection of latent Mycobacterium tuberculosis infection and host cell specific targeted delivery of potential antituberculotic compounds

Open Date: 2013-01-01

Close Date: 2016-12-31

Articles (13)

Gluing GAP to RAS Mutants: A New Approach to an Old Problem in Cancer Drug Development

Mutated genes may lead to cancer development in numerous tissues. While more than 600 cancer-causing genes are known today, some of the most widespread mutations are connected to the RAS gene; RAS mutations are found in approximately 25% of all human tumors. Specifically, KRAS mutations are involved in the three most lethal cancers in the U.S., namely pancreatic ductal adenocarcinoma, colorectal adenocarcinoma, and lung adenocarcinoma. These cancers are among the most difficult to treat, and they are frequently excluded from chemotherapeutic attacks as hopeless cases. The mutated KRAS proteins have specific three-dimensional conformations, which perturb functional interaction with the GAP protein on the GAP–RAS complex surface, leading to a signaling cascade and uncontrolled cell growth. Here, we describe a gluing docking method for finding small molecules that bind to both the GAP and the mutated KRAS molecules. These small molecules glue together the GAP and the mutated KRAS molecules and may serve as new cancer drugs for the most lethal, most difficult-to-treat, carcinomas. As a proof of concept, we identify two new, drug-like small molecules with the new method; these compounds specifically inhibit the growth of the PANC-1 cell line with KRAS mutation G12D in vitro and in vivo. Importantly, the two new compounds show significantly lower IC50 and higher specificity against the G12D KRAS mutant human pancreatic cancer cell line PANC-1, as compared to the recently described selective G12D KRAS inhibitor MRTX-1133.

Year:

2024

Collaborators (3)

Mónika Molnár

Associate professor

Budapest University of Technology and Economics

HUNGARY

Viktor Farkas

Eötvös Loránd University

HUNGARY

Kinga Nyíri

assistant lecturer

Budapest University of Technology and Economics

HUNGARY
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