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Medicinal chemistry and drug design
Antolin’s Lab

DESCRIPTION

Our research bridges Chemistry, Biology and Data Science to better understand the effects of approved drugs to harness them in personalized and precision oncology and to design safer and more effective new cancer therapeutics.

The Medicinal Chemistry & Drug Design group broadly focuses on three main lines of research: developing open science chemical biology resources, harnessing the effects of drugs at the systems level in precision medicine, and exploiting Big Data and AI to discover more efficacious drugs with a particular focus in oncology. 

Open Science initiatives in Chemical Biology

As an example of the first line of research, Dr. Antolin serves as Associate Director of Cheminformatics at the Chemical Probes Portal, an international initiative and freely available resource that coordinates expert rating of chemical probes to improve the robustness and reproducibility of biomedical research (Antolin AA, et al. Nucleic Acids Research, 2023). We also collaborate with the public cancer knowledgebase canSAR, and with the Target 2035 initiative, among others.

Systems Pharmacology to better harness current drugs in precision medicine

We are broadly interested in understanding the unexplained effects of drugs to better use our current therapeutic arsenal in precision medicine. For example, we have recently discovered the unexpected biological activity of the metabolite of a cancer drug that could open new avenues for its precise use in prostate cancer while offering unexpected repurposing opportunities in Parkinson’s Disease (Hu H, et al. Cell Chemical Biology, in press). We have also recently used machine learning approaches to better understand how certain drugs produce a side-effect termed phospholipidosis (Hu H, et al. Cell Chemical Biology, S2451-9456, 00322-7). We are particularly interested in the development and use of computational methods to predict the mechanism of action of compounds – their binding to specific protein targets (polypharmacology) – and we have recently started an industrial collaboration to harness high-content microscopy and Deep Learning to predict polypharmacology.

Exploiting Big Data and AI to discover more effective drugs

The final aim of the team is to contribute to the discovery of new drugs for disease of high unmet medical need with a particular focus in oncology. On the one hand, we develop new cheminformatic methodologies centered in the application of machine learning for multi-target drug design. On the other hand, we engage in collaborative drug discovery projects where we try to collaborate closely with industry and clinicians to speed the translation of results. For example, we have recently started coordinating an international collaborative project with the Institute of Cancer Research (UK) and the company VIVAN Therapeutics (UK) that aims at discovering new multi-target KRAS inhibitors that resist resistance.

Group members

Albert Antolin

Group leaders

Group Leader

Leticia Manen

Support staff

Lab Manager / Staff Scientist

Santiago Santos

Support staff

Technician

Publications

Short-term exposure to environmental levels of nicotine and cotinine impairs visual motor response in zebrafish larvae through a similar mode of action: Exploring the potential role of zebrafish α7 nAChR

16 de December de 2023/in Antolin's lab/by

Sci Total Environ. 2023 Dec 14:169301. doi: 10.1016/j.scitotenv.2023.169301. Online ahead of print. ABSTRACT The current view is that environmental levels of nicotine and cotinine, commonly in the ng/L range, are safe for aquatic organisms. In this study, 7 days post-fertilization zebrafish embryos have been exposed for 24 h to a range of environmental concentrations of […]

https://procure-oncology.com/wp-content/uploads/2023/10/Procure-icoRecurso-1@2x-100.jpg 0 0 https://procure-oncology.com/wp-content/uploads/2023/10/Procure-icoRecurso-1@2x-100.jpg 2023-12-16 11:00:002023-12-16 11:00:00Short-term exposure to environmental levels of nicotine and cotinine impairs visual motor response in zebrafish larvae through a similar mode of action: Exploring the potential role of zebrafish α7 nAChR

Elucidating Compound Mechanism of Action and Polypharmacology with a Large-scale Perturbational Profile Compendium

24 de October de 2023/in Antolin's lab/by miguel

bioRxiv. 2023 Oct 10:2023.10.08.561457. doi: 10.1101/2023.10.08.561457. Preprint. ABSTRACT The Mechanism of Action (MoA) of a drug is generally represented as a small, non-tissue-specific repertoire of high-affinity binding targets. Yet, drug activity and polypharmacology are increasingly associated with a broad range of off-target and tissue-specific effector proteins. To address this challenge, we have implemented an efficient […]

https://procure-oncology.com/wp-content/uploads/2023/10/Procure-icoRecurso-1@2x-100.jpg 0 0 miguel https://procure-oncology.com/wp-content/uploads/2023/10/Procure-icoRecurso-1@2x-100.jpg miguel2023-10-24 10:00:002023-10-24 10:00:00Elucidating Compound Mechanism of Action and Polypharmacology with a Large-scale Perturbational Profile Compendium

A machine learning and live-cell imaging tool kit uncovers small molecules induced phospholipidosis

5 de October de 2023/in Antolin's lab/by miguel

Cell Chem Biol. 2023 Sep 27:S2451-9456(23)00322-7. doi: 10.1016/j.chembiol.2023.09.003. Online ahead of print. ABSTRACT Drug-induced phospholipidosis (DIPL), characterized by excessive accumulation of phospholipids in lysosomes, can lead to clinical adverse effects. It may also alter phenotypic responses in functional studies using chemical probes. Therefore, robust methods are needed to predict and quantify phospholipidosis (PL) early in […]

https://procure-oncology.com/wp-content/uploads/2023/10/Procure-icoRecurso-1@2x-100.jpg 0 0 miguel https://procure-oncology.com/wp-content/uploads/2023/10/Procure-icoRecurso-1@2x-100.jpg miguel2023-10-05 10:00:002023-10-05 10:00:00A machine learning and live-cell imaging tool kit uncovers small molecules induced phospholipidosis

Target 2035 – an update on private sector contributions

26 de June de 2023/in Antolin's lab/by miguel

RSC Med Chem. 2023 Mar 16;14(6):1002-1011. doi: 10.1039/d2md00441k. eCollection 2023 Jun 22. ABSTRACT Target 2035, an international federation of biomedical scientists from the public and private sectors, is leveraging ‘open’ principles to develop a pharmacological tool for every human protein. These tools are important reagents for scientists studying human health and disease and will facilitate […]

https://procure-oncology.com/wp-content/uploads/2023/10/Procure-icoRecurso-1@2x-100.jpg 0 0 miguel https://procure-oncology.com/wp-content/uploads/2023/10/Procure-icoRecurso-1@2x-100.jpg miguel2023-06-26 10:00:002023-06-26 10:00:00Target 2035 – an update on private sector contributions

canSAR: update to the cancer translational research and drug discovery knowledgebase

10 de January de 2023/in Antolin's lab/by miguel

Nucleic Acids Res. 2023 Jan 6;51(D1):D1212-D1219. doi: 10.1093/nar/gkac1004. ABSTRACT canSAR (https://cansar.ai) is the largest public cancer drug discovery and translational research knowledgebase. Now hosted in its new home at MD Anderson Cancer Center, canSAR integrates billions of experimental measurements from across molecular profiling, pharmacology, chemistry, structural and systems biology. Moreover, canSAR applies a unique suite […]

https://procure-oncology.com/wp-content/uploads/2023/10/Procure-icoRecurso-1@2x-100.jpg 0 0 miguel https://procure-oncology.com/wp-content/uploads/2023/10/Procure-icoRecurso-1@2x-100.jpg miguel2023-01-10 11:00:002023-01-10 11:00:00canSAR: update to the cancer translational research and drug discovery knowledgebase
Page 3 of 8‹12345›»

Research Projects

Title: Systems Drug Discovery to Tackle Cancer Drug Resistance

Project Number: CP22/00122 (Miguel Servet Fellowship)

PI: Albert Antolin

Source of Support: Instituto de Salud Carlos III (ISCIII)

Project Start and End Date: 07/2023 – 07/2028

Total Award Amount: 240,000€

Title: Systems-based Characterization of Drug Metabolites to Exploit them in Precision Medicine

Project Number: PID2022-136344OA-I00

PI: Albert Antolin

Source of Support: Spanish Ministry of Science and Innovation

Project Start and End Date: 09/2023 – 08/2026

Total Award Amount: 130,000€

Title: Rational design of multi-target KRAS inhibitors that resist resistance

Project Number: N/A (industrial collaboration, non-competitive)

PI: Albert Antolin

Source of Support: VIVAN Therapeutics

Project Start and End Date: 10/2023 – 10/2024

Total Award Amount: 50,000€

Collaborations

Amadeu Llebaria (IQAC-CSIC, Barcelona)

Antonella Consiglio (UB, Barcelona)

Nahuel Villegas (Vivan Therapeutics, London)

Susanne Muller (SGC, Frankfurt)

Paul Workman (ICR, London)

Bissan Al-Lazikani (MDACC, Houston)

Jordi Mestres (Chemotargets, Barcelona)

Marcos Malumbres (VHIO, Barcelona)

Jonathan Baell (Lyterian Therapeutics, San Francisco)

Andrea Califano (Columbia, NYC)

Antolin's Lab
Program Against Cancer Therapeutic Resistance

CONTACT US

Campus IDIBELL
(L’Hospitalet del Llobregat)
Hospital Duran i Reynals, Gran Via 199,
L’Hospitalet del Llobregat,
Barcelona 08908
Tel. +34 93 260 7952

Campus IGTP-IJC
(Badalona)
Campus Can Ruti – IGTP – Building Muntanya,
Rd. Can Ruti, Camí de les escoles s/n,
Badalona, Barcelona 08916
Tel. +34 93 554 3069

Campus IDIBGI
(Girona)
Parc Hospitalari Martí i Julià de Salt, Dr. Castany s/n,
Salt, Girona 17190
Tel. +34 872 987 087

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