Results 161 to 170 of about 11,395,252 (264)
Translophagy—A potential link between autophagy impairment and translational errors
Neurodegenerative diseases are characterised by the accumulation of abnormal proteins and protein aggregates, but their origin often remains unknown. We propose that selective autophagy removes damaged protein‐making machinery, preventing errors during protein synthesis.
Mykola V. Korolchuk +11 more
wiley +1 more source
Annual Report - Marine Biological Laboratory, 1983
Annual report of the Marine Biological Laboratory in Woods Hole. 1983.
Marine Biological Laboratory (Woods Hole MA)
core
Encapsulins are protein nanocompartments that play an important role in iron storage. In the Myxococcus xanthus encapsulin system, two cargo proteins called EncB and EncC contribute to iron mineralization. Here, we show that EncB and EncC generate iron‐containing minerals with distinct chemical compositions, suggesting that the composition of stored ...
Harry B. McDowell +2 more
wiley +1 more source
Annual Report - Marine Biological Laboratory, 1894
Annual report of the Marine Biological Laboratory in Woods Hole. 1894.
Marine Biological Laboratory (Woods Hole MA)
core
Mycobacterial 3‐methylcrotonyl‐CoA carboxylase uses a mobile biotin‐carrying domain to shuttle a carboxyl group between two catalytic sites, enabling carboxylation of 3‐methylcrotonyl‐CoA during leucine breakdown. Cryo‐electron microscopy captures the carrier at both sites and reveals an inward loop movement that may prevent futile rebinding to the ...
Ajit Yadav +2 more
wiley +1 more source
Annual Report - Marine Biological Laboratory, 1988
Annual report of the Marine Biological Laboratory in Woods Hole. 1988.
Marine Biological Laboratory (Woods Hole MA)
core
How do genomes gain new functional parts? In eukaryotes, which tend to evolve under weak selection, much of the genome is junk. Palazzo and Qiu borrow the logic of Markov chains to show how non‐functional DNA becomes functional through the appearance of intermediate states, which arise due to epistasis, buffering, and biochemical messiness, allowing ...
Alexander F. Palazzo, Yi Qiu
wiley +1 more source
Annual Report - Marine Biological Laboratory, 1935
Annual report of the Marine Biological Laboratory in Woods Hole. 1935.
Marine Biological Laboratory (Woods Hole MA)
core
Artificial molecular machines and motors—Design and control of nanoscale motion
Molecules are constantly moving because of thermal fluctuations, but random motion alone cannot be exploited to perform directional tasks. Artificial molecular machines use chemical, electrical, or light energy to bias this motion. Molecular shuttles, rotary motors, and supramolecular pumps illustrate how nanoscale movement can be controlled and ...
Leonardo Andreoni, Alberto Credi
wiley +1 more source
Annual Report - Marine Biological Laboratory, 1943
Annual report of the Marine Biological Laboratory in Woods Hole. 1943.
Marine Biological Laboratory (Woods Hole MA)
core

