日期:
2020 年 — 2026 年
2020
2021
2022
2023
2024
2025
2026
影响因子:

AKAP2 is required for assembly of cytoskeletal signaling complexes that promote growth and metastasis of triple-negative breast cancer

AKAP2是细胞骨架信号复合物组装所必需的,这些复合物促进三阴性乳腺癌的生长和转移。

Rosenthal, Kacey J; Felix-Sanchez, Pamela; Forbush, Katherine; Rhoads, Nicole; Kang, Mingu; Vicente, Juan Jesus; Smith, F Donelson; Wordeman, Linda; Ong, Shao-En; Cheung, Kevin J; Scott, John D

Dominant α-tubulin mutations rescue tauopathy neurodegenerative phenotypes in C. elegans

显性α-微管蛋白突变可挽救秀丽隐杆线虫的tau蛋白病神经退行性表型

Benbow, Sarah J; Saxton, Aleen D; Baum, Misa; Uhrich, Rikki L; Stair, Jade G; Keene, Kelly; Dahleen, Chloe; Wordeman, Linda; Liachko, Nicole F; Kow, Rebecca L; Kraemer, Brian C

The Kinesin Motor Kif9 Disrupts Primary Cilia Length by Mispositioning Centriolar Satellites

驱动蛋白Kif9通过错位中心粒卫星体来扰乱初级纤毛的长度

Vicente, Juan Jesus; Weiss, Jacob; Wagenbach, Michael; Wordeman, Linda

MCAK/Kif2C centromeric activity level tunes K-fiber stability.

MCAK/Kif2C着丝粒活性水平调节K纤维稳定性

Wordeman Linda, Wagenbach Mike, Vicente Juan Jesus

KIF2C/MCAK a prognostic biomarker and its oncogenic potential in malignant progression, and prognosis of cancer patients: a systematic review and meta-analysis as biomarker

KIF2C/MCAK作为预后生物标志物及其在恶性进展中的致癌潜力,以及癌症患者的预后:作为生物标志物的系统评价和荟萃分析

Kreis, Nina-Naomi; Moon, Ha Hyung; Wordeman, Linda; Louwen, Frank; Solbach, Christine; Yuan, Juping; Ritter, Andreas

Microtubule Targeting Agents in Disease: Classic Drugs, Novel Roles

微管靶向药物在疾病中的应用:经典药物,新作用

Wordeman, Linda; Vicente, Juan Jesus

Kinase-anchoring proteins in ciliary signal transduction

纤毛信号转导中的激酶锚定蛋白

Gopalan, Janani; Wordeman, Linda; Scott, John D

A brain-penetrant microtubule-targeting agent that disrupts hallmarks of glioma tumorigenesis

一种能穿透血脑屏障、靶向微管的药物,可破坏胶质瘤肿瘤发生的标志性特征

Horne, Eric A; Diaz, Philippe; Cimino, Patrick J; Jung, Erik; Xu, Cong; Hamel, Ernest; Wagenbach, Michael; Kumasaka, Debra; Wageling, Nicholas B; Azorín, Daniel D; Winkler, Frank; Wordeman, Linda G; Holland, Eric C; Stella, Nephi

Cell Biology: Social Distancing of Microtubule Ends Increases Their Assembly Rates

细胞生物学:微管末端保持社交距离可提高其组装速率

Wordeman, Linda

GTP-tubulin loves microtubule plus ends but marries the minus ends

GTP-微管蛋白亲和微管的正端,但也会与微管的负端结合。

Wordeman, Linda