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Approaching Cancer as an Inflammation-Based Disease: Theoretical Development of Innovative Ways to Design New Pharmacological and Photopharmacological Treatments

Gonzalez Lafont, À. (IP1), Moreno Ferrer, M. (IP2), Lluch Lopez, J. M. , Gelabert Peiri, R. & Pérez Sánchez, Á.

1/09/2024 – 31/12/27

Details

This theoretical project will generate new knowledge for the rational design of drugs capable of mitigating or even eliminating cancer-related inflammation with the aim of transferring this knowledge to experimental groups that synthesize the molecules and/or perform the necessary clinical analyses. In the medium/long term, the beneficiaries will be cancer patients, doctors, the health system and the biotechnology and pharmaceutical industries. Since the aim is to solve a problem linked to a major challenge for society, this is a multi- and interdisciplinary project in the field of Theoretical Molecular Biology in which Mathematics, Physics, Chemistry, Biochemistry, Biology and Computer Science are brought together to achieve a synergy aimed at finding new ways to treat cancer. Cancer causes around 8 million deaths a year. It is known that inflammation is a key feature of cancer processes, so that the numerous connections between cancer and inflammation are used in different therapies. The body’s immune system responds to inflammation by fighting invaders and healing damaged tissue. White blood cells move to the damaged tissue and produce substances that induce cell division, regenerating the destroyed tissue. This process should end when the wound has healed, but if inflammation appears at the wrong time or becomes chronic, cancers can develop and malignant cells can take advantage of the inflammatory environment by eliminating cells that are intended to fight the tumor.
The project is divided into 7 interconnected work packages (WPs):
WP1. Design of photoactivatable drugs for cyclooxygenase-2 (COX-2). COX-2 is an inducible protein, one of the keys in the enzymatic inflammatory process.
WP2. Design of selective inhibitors of the COX-2 homodimer: In inflammations caused by an injury, COX-2 is found in monomeric form, but it is speculated that, in high concentrations, such as those found in carcinogenic processes, it could be found in dimeric form. This opens the door to design drugs that inhibit the dimer without affecting constitutive COX-2.
WP3: Design of chimeras and photochemical chimeras targeting proteolysis (PROTACs and PHOTACs). The goal is to degrade COX-2, a drastic alternative to inhibition. The design of PHOTACS combines the study of PROTACS and photopharmacology.
WP4. Design of a biocatalytic synthesis of maresin 1 (MaR1). MaR1 is a common macrophage mediator in the resolution of inflammation.
WP5. Activation of MaR1 receptors and design of agonists. Initially, research into specialized non-immunosuppressive mediators focused on ligand activity. Recently, attention has turned to elucidating the signaling mechanism.
WP6. Design of selective inhibitors of the inflammatory process of 5-lipoxygenase. This is another key enzyme in inflammatory processes.

WP7. Design of operational photoswitches in the bio-optical window by means of mono- or multi-photon absorption and adequate active state lifetimes. All the previous WPs are based on obtaining photoactivatable molecules that can efficiently replace the original molecules. To do this, the photoswitch must bind to the active molecule.

Using Biomolecular Engineering and Theoretical Photopharmacology to Design and Obtain New Drugs for Human Diseases, Including COVID-19

Lluch Lopez, J. M., Gonzalez Lafont, À., Canyelles Niño, M., Cruz Saez, A., Pérez Sánchez, Á., Gelabert Peiri, R. & Moreno Ferrer, M.

1/09/2021 – 31/03/25

Details

In this project in the field of theoretical molecular biology we aim to apply the most powerful tools of theoretical chemistry (quantum chemistry, statistical mechanics and biomolecular simulations) to the central problems of the biotechnological and pharmaceutical industry. Our two overarching goals are the design (and in some cases the design of their biocatalytic production) of two different types of drugs that may play a particularly important role in the control and treatment of several potentially serious human diseases: lipoxygenase-related drugs and cyclooxygenases. . for inflammatory diseases and photoswitch drugs. We split the project into two large work packages (wp) a and b: wp a. Drugs related to lipoxygenases and cyclooxygenases for inflammatory diseases. A thorough understanding of the biosynthetic pathways for specialized pro-resolution lipid mediators is imperative in order to develop the most effective chronic inflammation therapies. This will enable the activation of endogenous resolution pathways as well as new therapeutic approaches such as obtaining efficient exogenous drugs for the treatment of human diseases involving severe chronic inflammation, including covid-19. Wp a.1. Biosynthetic pathways of lipoxins and resolvins. Design of NSAIDs that induce the behavior of COX-2 lipoxygenase, thus contributing to the formation of specialized pro-resolution lipid mediators and the resolution of inflammation. Wp a.2. Maresinas (macrophage mediator in the resolution of inflammation). We intend to use computational protein engineering to design an artificial enzyme that can synthesize maresin 1. Wp a.3. Maresina receivers. We will study the mechanism of interaction between maresin 1 and its receptors and try to design other agonists with a more efficient pro-resolution effect. Wp a.4. Allosteric inhibition of mammalian 15-LOX-1. Design of a molecule that maximizes inhibition of 15-LOX-1-catalyzed oxygenation (dimer) of linoleic acid but minimizes the effect on arachidonic acid oxygenation. Wp a.5. “coxib” photoswitches. Design of simple photoswitches by incorporating an azobenzene photoswitch into the original molecule, which allow their reversible local photocontrol in real time. Wp b. Photoswitch drugs. Wp b.1. Development of monophotonic photoswitches in the bio-optical window. Wp b.2: desenvolupament de fotointerruptors multifotònics per a ús en fotofarmacologia. We will focus on three types of azobenzene photoswitches: 1) mag derivatives, which act on synaptic receptors. 2) photoswitch muscarinic agonists, which can optically monitor cardiac function. 3) related to methotrexate, a chemotherapy drug widely prescribed to treat cancer. In parallel with this project, after the experimental validation of our computational designs, several valorization actions will be launched in collaboration with the valorization and patents office of the uabs: presentation of the corresponding patent applications , market analysis of our designs in the biotechnology sector and pharmaceutical companies. , and possible negotiation of a license agreement with interested pharmaceutical and biotech companies.

Finished

Elucidation Through Biomolecular Simulation of Some Molecular Mechanisms of Inflammatory Processes

Lluch Lopez, J. M., Gonzalez Lafont, M. D. A., Masgrau Fontanet, L., Garcia Viloca, M., Gelabert Peiri, R. & Moreno Ferrer, M.

1/01/2018 – 31/12/20

Control/Modification of the Activity and Functions of Biomolecules: Biomolecular Simulation Applied to Enzyme Engineering and Photoregulation of Bioactive Molecules

Lluch Lopez, J. M., Gonzalez Lafont, M. D. A., Masgrau Fontanet, L., Garcia Viloca, M., Gelabert Peiri, R. & Moreno Ferrer, M.

1/01/2015 – 31/07/18

Extending Theoretical Chemistry to the Study of Enzymatic Catalysis and Fluorescent Proteins

Lluch Lopez, J. M., Gómez Martínez, H., Nadal Ferret, M., Pérez Gallegos, A. P. G., Randibno Zancajo, C., Suardiaz del Rio, R., Garcia Viloca, M., Gelabert Peiri, R., Gonzalez Lafont, M. D. A., Masgrau Fontanet, L., Moreno Ferrer, M., Saura, P. & Toledo Carvajal, L. N.

1/01/2012 – 31/07/2015

Linking Chemical Reactivity with Enzyme Catalysis and Photobiology: Nuclei Dynamics as a Nexus

Lluch Lopez, J. M., Comes Solé, Pilar, Edgar Mixcoha Hernández, Garcia Viloca, M., Gelabert Peiri, R., Gonzalez Lafont, M. D. A., Masgrau Fontanet, L., Moreno Ferrer, M., Ortiz Sánchez, J. M., Puig Àlvarez, E., Ramírez Anguita, J. M. & Toledo Carvajal, L. N.

1/01/2009 – 31/12/2011

Extending Dynamic Methods Towards New Applications in Chemistry and Biology

Lluch Lopez, J. M., González Garcia, N., Puig Àlvarez, E., Garcia Viloca, M., Gelabert Peiri, R., Gonzalez Lafont, M. D. A., Moreno Ferrer, M. & Vendrell Romagosa, O.

13/12/2005 – 13/12/2008

From Molecular Chemistry to Molecular Biology: Some Phenomena due to the Dynamics of Nuclei

Lluch Lopez, J. M., Masgrau Fontanet, L., Torres Casas, L., Asensio Montaner, F. J., Casadesus Castro, R., Gelabert Peiri, R., Gonzalez Lafont, M. D. A., Moreno Ferrer, M., Prat Resina, X. & Vendrell Romagosa, O

1/12/2002 – 1/12/2005