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213 results on '"Centriole assembly"'

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101. Centrosome biogenesis and function: centrosomics brings new understanding

102. Centrosome duplication: of rules and licenses

103. A non-canonical function of Plk4 in centriolar satellite integrity and ciliogenesis through PCM1 phosphorylation

105. Sequential Protein Recruitment in C. elegans Centriole Formation

106. Quantitative Immunofluorescence Assay to Measure the Variation in Protein Levels at Centrosomes

107. Mutational analyses reveal a novel function of the nucleotide-binding domain of γ-tubulin in the regulation of basal body biogenesis

108. The Polo kinase Plk4 functions in centriole duplication

109. SAS-6 defines a protein family required for centrosome duplication in C. elegans and in human cells

110. The de novo centriole assembly pathway in HeLa cells

111. Centriole Assembly Requires Both Centriolar and Pericentriolar Material Proteins

112. Bld10p, a novel protein essential for basal body assembly in Chlamydomonas

113. Centrin4p, a Novel Mammalian Centrin Specifically Expressed in Ciliated Cells

114. Basal body/centriole assembly and continuity

115. Centrosome Loss in the Evolution of Planarians

116. CP110, a Cell Cycle-Dependent CDK Substrate, Regulates Centrosome Duplication in Human Cells

117. Centrin-2 Is Required for Centriole Duplication in Mammalian Cells

118. FBXW5 controls centrosome number

119. Mutation in PLK4, encoding a master regulator of centriole formation, defines a novel locus for primordial dwarfism

120. Direct interaction of Plk4 with STIL ensures formation of a single procentriole per parental centriole

121. Plk4 phosphorylates Ana2 to trigger Sas6 recruitment and procentriole formation

122. Expression, purification and preliminary crystallographic analysis of the cryptic polo-box domain of Caenorhabditis elegans ZYG-1

123. Kinetics and regulation of de novo centriole assembly

124. Basal body duplication in Paramecium requires γ-tubulin

125. Centriole Disassembly In Vivo and Its Effect on Centrosome Structure and Function in Vertebrate Cells

126. Centriole Assembly: The Origin of Nine-ness

128. The SAS-5 N-terminal domain is a tetramer, with implications for centriole assembly in C. elegans

129. VDAC3 and Mps1 negatively regulate ciliogenesis

130. Human Cep192 and Cep152 cooperate in Plk4 recruitment and centriole duplication

131. The Motility of Axonemal Dynein is Regulated by the Tubulin Code

132. Cartwheel architecture of Trichonympha basal body

133. Towards a molecular architecture of centriole assembly

134. Show me your license, please: deregulation of centriole duplication mechanisms that promote amplification

135. STIL is required for centriole duplication in human cells

136. Regulation of the Centrosome Cycle by Protein Degradation

137. The centrosome cycle: Centriole biogenesis, duplication and inherent asymmetries

138. PP2A phosphatase acts upon SAS-5 to ensure centriole formation in C. elegans embryos

139. PP2A targets SAS-5 in centriole assembly

140. Centriole assembly and the role of Mps1: defensible or dispensable?

141. Plk4/SAK/ZYG-1 in the regulation of centriole duplication

142. Cep152 interacts with Plk4 and is required for centriole duplication

143. Cep120 is asymmetrically localized to the daughter centriole and is essential for centriole assembly

144. Plk4 trans-autophosphorylation regulates centriole number by controlling betaTrCP-mediated degradation

145. Reconstructing the evolutionary history of the centriole from protein components

146. Stepwise evolution of the centriole-assembly pathway

147. Polo-like kinase 4 kinase activity limits centrosome overduplication by autoregulating its own stability

148. Microscopy Methods for the Study of Centriole Biogenesis and Function in Drosophila

149. Phosphorylation of SAS-6 by ZYG-1 is critical for centriole formation in C. elegans embryos

150. Centriole assembly in CHO cells expressing Plk4/SAS6/SAS4 is similar to centriogenesis in ciliated epithelial cells

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