BIO-LIGHT · Photoexcitation for New-to-Nature Enzymatic Reactions
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2021-08-01 → 2023-07-31
- Финансиране от ЕС
- 160 932 €
- Участници
- 1
- Схема
- MSCA-IF
Линиите свързват координатора с партньорите.
Накратко на български
Ензимите се комбинират със светлинни катализатори, за да създадат химични реакции, които не се срещат в природата, като например синтеза на специфични хирални молекули. Това помага за разработването на по-устойчиви методи за създаване на сложни органични структури за медицината и материалите.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Photoexcitation for New-to-Nature Enzymatic Reactions
• What is the problem/issue being addressed? Despite the changing face of chemistry, enantioselective synthesis (the ability to generate chiral molecules in a controlled fashion) continues to play a centrally important role. New reactivity concepts and strategies are needed to address the increasingly complex synthetic problems being posed by Nature, medicine, and materials. Biocatalysis has a central role in the transition towards a more sustainable stereocontrolled chemistry. In spite of its potential, natural enzymes use only a relatively small section of ‘reaction space’. This implies that only a limited number of stereocontrolled reaction classes, which are characterized by a similar reaction mechanism, can be effectively promoted. For example, a natural enzyme co-opted for new chemistry has the limitation that the new reactivity must be quite closely related to the naturally established catalytic function. The main aim of the BIO-LIGHT project is to identify new strategies that allow enzymes to catalyse new-to-nature asymmetric reactions, thus expanding the reactivity boundaries of biocatalysis. To achieve this goal, BIO-LIGHT combined biocatalysis with visible light photocatalysis, a modern strategy of chemical reactivity which offers a potent way to sustainably build complex organic frameworks. The effective combination of these two strategies was exemplified for the development of asymmetric synthetic strategies based on chiral enantiopure radical precursors a long lasting challenge in organic chemistry due to the intrinsic configurational instability and fast racemization of prochiral radicals. This finding underscores the active site's ability to transfer stereochemical information from the chiral radical precursor into the product, effectively preventing racemization of prochiral radicals. The resulting ‘memory of chirality’ scenario is a rarity in enantioselective radical chemistry • Why is it important for society? The project contributes to the excellence of basic science in the EU in the field of methodology or the preparation of biorelevant compounds. On a more extended timescale, to scientific innovation, positively impacting society and the economy through the development of a new photobiocatalytic platform versatile enough to enable the advancement of other unconventional stereocontrolled radical functionalization processes • What are the overall objectives? The main goal is therefore to access non-natural enzyme activities via photoexcitation. Specifically, the potential of specific native intermediates in the active sites of existing enzymes to reach an excited state upon light absorption and enable new-to nature asymmetric radical-mediated reactions has been demonstrated. Visible light serves to elicit mechanistic divergence within enzymes with an established ground-state reactivity, thus allowing them to promote completely different processes than those for which they evolved. This approach provides unexplored possibilities for developing stereoselective processes driven by light that cannot be realized using thermal activation. This provides advances in the development of more responsible and sustainable stereoselective synthetic methods while strengthening the chemistry toolbox to better face the challenges of modern organic chemistry.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Enzymatic catalysis plays a centrally important role for the preparation of chiral molecules and in the transition towards a more sustainable chemistry. In spite of their potential, natural enzymes use only a relatively small section of ‘reaction space’. This implies that only a limited number of stereocontrolled reaction classes, which are characterized by a similar reaction mechanism, can be effectively promoted. For example, a natural enzyme co-opted for new chemistry has the limitation that the new reactivity must be quite closely related to the naturally established catalytic function. The BIO-LIGHT project seeks to identify new strategies that allow enzymes to catalyse new-to-nature asymmetric reactions, thus expanding the reactivity boundaries of biocatalysis. To achieve this goal, we will combine biocatalysis with visible light photocatalysis, a modern strategy of chemical reactivity which offers a potent way to sustainably build new molecules. Specifically, we will explore the potential of native intermediates in the enzymes’ active sites to reach an excited state upon light absorption and enable new-to-nature enantioselective radical reactions. Light will be used to elicit mechanistic divergence within enzymes with an established ground-state reactivity, thus allowing them to catalyse completely different processes than those for which they evolved. The collaboration with an international pharma-company (Bayer AG) will facilitate the development of photo-enzymatic processes yielding chiral molecules adorned with biologically relevant scaffolds.BIO-LIGHT combines the fellow’s experience in enzymatic catalysis and directed evolution and the host’s experience in photo-triggered asymmetric radical processes. The multi-cultural and intersectorial nature of this project will contribute to broaden the fellow’s competencies and will place him in a competitive position for the next career move.
Оригинален текст от CORDIS (на английски).
Участници
- FUNDACIO INSTITUT CATALA D'INVESTIGACIO QUIMICA · TARRAGONAКоординаторИспания
Връзки
Данни: CORDIS, © Европейски съюз
