Zobrazeno 1 - 7
of 7
pro vyhledávání: '"Amy E. Boncella"'
Autor:
Jesse D. Hudspeth, Amy E. Boncella, Emily T. Sabo, Taylor Andrews, Jeffrey M. Boyd, Christine N. Morrison
Publikováno v:
ACS Omega. 7:44124-44133
Autor:
Jesse D, Hudspeth, Amy E, Boncella, Emily T, Sabo, Taylor, Andrews, Jeffrey M, Boyd, Christine N, Morrison
Publikováno v:
ACS omega. 7(48)
In this work, we provide the first in vitro characterization of two essential proteins from
Autor:
Eric D. Ross, Andrew K. Lamb, Matthew H. Baer, Kacy R. Paul, Jenifer E. Shattuck, Sean M. Cascarina, Amy E. Boncella, Anastasia Fomicheva
Publikováno v:
Proceedings of the National Academy of Sciences of the United States of America
Significance Many RNA-binding proteins contain aggregation-prone prion-like domains (PrLDs), and mutations in several of these have been linked to degenerative diseases. Additionally, many of these proteins are associated with stress granules, which
Autor:
Jens Carter, Jaclyn Whalen, Emily T. Sabo, Christine N. Morrison, Jesse D. Hudspeth, Amy E. Boncella, Robert M. Santore
Publikováno v:
Coordination Chemistry Reviews. 453:214229
The ubiquity, structural variation, and functional diversity of iron-sulfur (Fe-S) clusters in biological environments has long fascinated scientists. In nature, Fe-S clusters form a variety of shapes and sizes, from the simple [Fe2S2] rhombic cluste
Autor:
Sean M. Cascarina, Eric D. Ross, J. Paul Taylor, Kacy R. Paul, Amy E. Boncella, Amandine Molliex
Publikováno v:
Molecular and cellular biology. 37(8)
Hundreds of human proteins contain prion-like domains, which are a subset of low-complexity domains with high amino acid compositional similarity to yeast prion domains. A recently characterized mutation in the prion-like domain of the human heteroge
Autor:
Kateryna Artyushkova, Sofia Babanova, Saumen Chakraborty, Plamen Atanassov, Jennifer S. Martinez, Anil Desireddy, Reginaldo C. Rocha, Amy E. Boncella
Publikováno v:
Journal of the American Chemical Society. 137(36)
We report the synthesis and characterization of a new DNA-templated gold nanocluster (AuNC) of ∼1 nm in diameter and possessing ∼7 Au atoms. When integrated with bilirubin oxidase (BOD) and single walled carbon nanotubes (SWNTs), the AuNC acts as
Publikováno v:
Small (Weinheim an der Bergstrasse, Germany). 7(14)