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Dive into the research topics where Peter Temitope Adeboye is active.

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Featured researches published by Peter Temitope Adeboye.


Scientific Reports | 2017

ALD5, PAD1, ATF1 and ATF2 facilitate the catabolism of coniferyl aldehyde, ferulic acid and p-coumaric acid in Saccharomyces cerevisiae

Peter Temitope Adeboye; Maurizio Bettiga; Lisbeth Olsson

The ability of Saccharomyces cerevisiae to catabolize phenolic compounds remains to be fully elucidated. Conversion of coniferyl aldehyde, ferulic acid and p-coumaric acid by S. cerevisiae under aerobic conditions was previously reported. A conversion pathway was also proposed. In the present study, possible enzymes involved in the reported conversion were investigated. Aldehyde dehydrogenase Ald5, phenylacrylic acid decarboxylase Pad1, and alcohol acetyltransferases Atf1 and Atf2, were hypothesised to be involved. Corresponding genes for the four enzymes were overexpressed in a S. cerevisiae strain named APT_1. The ability of APT_1 to tolerate and convert the three phenolic compounds was tested. APT_1 was also compared to strains B_CALD heterologously expressing coniferyl aldehyde dehydrogenase from Pseudomonas, and an ald5Δ strain, all previously reported. APT_1 exhibited the fastest conversion of coniferyl aldehyde, ferulic acid and p-coumaric acid. Using the intermediates and conversion products of each compound, the catabolic route of coniferyl aldehyde, ferulic acid and p-coumaric acid in S. cerevisiae was studied in greater detail.


Bioresource Technology | 2016

A coniferyl aldehyde dehydrogenase gene from Pseudomonas sp. strain HR199 enhances the conversion of coniferyl aldehyde by Saccharomyces cerevisiae

Peter Temitope Adeboye; Lisbeth Olsson; Maurizio Bettiga

The conversion of coniferyl aldehyde to cinnamic acids by Saccharomyces cerevisiae under aerobic growth conditions was previously observed. Bacteria such as Pseudomonas have been shown to harbor specialized enzymes for converting coniferyl aldehyde but no comparable enzymes have been identified in S. cerevisiae. CALDH from Pseudomonas was expressed in S. cerevisiae. An acetaldehyde dehydrogenase (Ald5) was also hypothesized to be actively involved in the conversion of coniferyl aldehyde under aerobic growth conditions in S. cerevisiae. In a second S. cerevisiae strain, the acetaldehyde dehydrogenase (ALD5) was deleted. A prototrophic control strain was also engineered. The engineered S. cerevisiae strains were cultivated in the presence of 1.1mM coniferyl aldehyde under aerobic condition in bioreactors. The results confirmed that expression of CALDH increased endogenous conversion of coniferyl aldehyde in S. cerevisiae and ALD5 is actively involved with the conversion of coniferyl aldehyde in S. cerevisiae.


AMB Express | 2014

The chemical nature of phenolic compounds determines their toxicity and induces distinct physiological responses in Saccharomyces cerevisiae in lignocellulose hydrolysates

Peter Temitope Adeboye; Maurizio Bettiga; Lisbeth Olsson


Microbial Cell Factories | 2015

Catabolism of coniferyl aldehyde, ferulic acid and p-coumaric acid by Saccharomyces cerevisiae yields less toxic products

Peter Temitope Adeboye; Maurizio Bettiga; Fredrik Aldaeus; Per Tomas Larsson; Lisbeth Olsson


Biofuels, Bioproducts and Biorefining | 2017

Toward a sustainable bioeconomy in West Africa: A focus on biorefining

Eugene Fletcher; Peter Temitope Adeboye; Kwabena O. Duedu


Archive | 2016

Mapping Phenolics Metabolism and Metabolic Engineering of Saccharomyces cerevisiae for Increased Endogenous Catabolism of Phenolic Compounds

Peter Temitope Adeboye


Symposium on Biotechnology for Fuels and Chemicals | 2015

In situ conversion of phenolic compounds as a tool to phenolic tolerance development by S. cerevisiae

Peter Temitope Adeboye; Maurizio Bettiga; Frederik Aldaeus; Per Tomas Larsson; Lisbeth Olsson


ISSY31: 31ST INTERNATIONAL SPECIALISED SYMPOSIUM ON YEAST | 2014

DETOXIFICATION AS A STRATEGY FOR DEVELOPING TOLERANCE IN Saccharomyces cerevisiae TO PHENOLIC COMPOUNDS

Peter Temitope Adeboye; Maurizio Bettiga; Lisbeth Olsson


Enzitec 2014- XI Seminário Brasileiro de Tecnologia Enzimática. Barra da Tijuca-Rio de Janeiro, April 14th to 16th, 2014 | 2014

Yeast physiology studies and metabolic engineering for enhanced robustness

Maurizio Bettiga; Magnus Ask; Lina Lindahl; Peter Temitope Adeboye; Varuni Raju Duraiswamy; Valeria Mapelli; Lisbeth Olsson


36th Symposium on Biotechnology for Fuels and Chemicals, April 2-May 1st, Clearwater Beach, Florids, USA | 2014

Conversion of lignin-derived phenolic compounds by Saccharomyces cerevisiae

Peter Temitope Adeboye; Maurizio Bettiga; Lisbeth Olsson

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Lisbeth Olsson

Chalmers University of Technology

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Maurizio Bettiga

Chalmers University of Technology

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Magnus Ask

Chalmers University of Technology

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Valeria Mapelli

Chalmers University of Technology

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Lina Lindahl

Chalmers University of Technology

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Per Tomas Larsson

Royal Institute of Technology

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Eva Albers

Chalmers University of Technology

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Lina Lindberg

Chalmers University of Technology

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Varuni Raju Duraiswamy

Chalmers University of Technology

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Eugene Fletcher

Technical University of Denmark

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