Area of research
Renewable Energy, Sustainability and the Environment · Molecular Biology
Research interest
Research interests include Biology, Chlamydomonas reinhardtii, Xanthophyll, Phaeodactylum tricornutum, Carotenoid, and Porphyra.
Both major xanthophyll cycles present in nature promote nonphotochemical quenching in a model diatom
<i>Chlamydomonas reinhardtii</i>, <i>Volvox carteri</i> and related green algae accumulate ketocarotenoids not in vegetative cells but in zygospores
Evolutionary genomics of the emergence of brown algae as key components of coastal ecosystems
Identifying the gene responsible for non‐photochemical quenching reversal in <i>Phaeodactylum tricornutum</i>
An unexpected hydratase synthesizes the green light-absorbing pigment fucoxanthin
Carotenoids in Chlamydomonas
Green diatom mutants reveal an intricate biosynthetic pathway of fucoxanthin
An algal enzyme required for biosynthesis of the most abundant marine carotenoids
A giant type I polyketide synthase participates in zygospore maturation in <i>Chlamydomonas reinhardtii</i>
GreenCut protein <scp>CPLD</scp>49 of <i>Chlamydomonas reinhardtii</i> associates with thylakoid membranes and is required for cytochrome <i>b</i><sub>6</sub><i>f</i> complex accumulation
Insights into the red algae and eukaryotic evolution from the genome of <i>Porphyra umbilicalis</i> (Bangiophyceae, Rhodophyta)
A functional zeaxanthin epoxidase from red algae shedding light on the evolution of light‐harvesting carotenoids and the xanthophyll cycle in photosynthetic eukaryotes
A lycopene β‐cyclase/lycopene ε‐cyclase/light‐harvesting complex‐fusion protein from the green alga <i>Ostreococcus lucimarinus</i> can be modified to produce α‐carotene and β‐carotene at different ratios
<i>Porphyra</i> (Bangiophyceae) Transcriptomes Provide Insights Into Red Algal Development And Metabolism
The Ectocarpus Genome and Brown Algal Genomics