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Keywords = TPX2-like proteins

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19 pages, 5147 KB  
Article
Arabidopsis TPXL Proteins Mediate a Selective Aurora Kinase–Microtubule Association During Cell Division
by Shilin Cao, Yuying Chen, Zongkuan Weng, Haiyun Ren and Pingzhou Du
Int. J. Mol. Sci. 2026, 27(18), 7980; https://doi.org/10.3390/ijms27187980 - 8 Sep 2026
Abstract
Microtubule organization during cell division requires coordinated regulation by microtubule-associated proteins and protein kinase signaling pathways. In animals, TPX2 (Targeting Protein for Xklp2) regulates spindle assembly by binding to and activating Aurora A kinase. In Arabidopsis, individual TPX2-like (TPXL) proteins have been [...] Read more.
Microtubule organization during cell division requires coordinated regulation by microtubule-associated proteins and protein kinase signaling pathways. In animals, TPX2 (Targeting Protein for Xklp2) regulates spindle assembly by binding to and activating Aurora A kinase. In Arabidopsis, individual TPX2-like (TPXL) proteins have been implicated in Aurora-associated functions, but whether the TPXL family members share common microtubule-associated properties and how TPXL-Aurora interactions differ across the family remain incompletely understood. Here, we investigated the structural and cellular relationships among the eight Arabidopsis TPX2-like proteins (TPXL1–TPXL8), microtubules, and Aurora kinases. AlphaFold3-based structural prediction indicated that specific interaction sites between TPXL proteins and tubulins were revealed at the three-dimensional structure and atomic level, suggesting that all TPXL proteins contain a conserved TPX2 domain contributing to their predicted tubulin association. Transient expression analyses showed that TPXL1–TPXL8 localized to microtubule arrays during both interphase and cell division. Although microtubule-associated domain is predicted to be conserved across the family, individual TPXL members exhibit distinct localization patterns on spindles and phragmoplasts, suggesting potential functional specialization. Further structural prediction and experimental validation revealed that only TPXL2, TPXL3, TPXL4, and TPXL8 interacted with AUR1 (Aurora 1) and AUR2, whereas no detectable interactions were observed for the other TPXL members or for any TPXL protein with AUR3. Structural prediction of TPXL–AUR1–tubulin complexes were consistent with a possible arrangement in which TPXL proteins contact both AUR1 and tubulin. Together, our findings suggest that Arabidopsis TPXL proteins have broad microtubule association and are coupled with selective Aurora kinase interaction to coordinate microtubule organization, providing a framework for future functional analysis of TPXL–Aurora–microtubule association during plant cell division. Full article
(This article belongs to the Special Issue New Advances in Plant Genetic Research)
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27 pages, 3342 KB  
Article
HURP Silencing Differentially Impacts Spindle Architecture and Metastatic Behavior in Breast Cancer Cell Lines
by Christos Efstathiou, Stylianos Didaskalou, Lito Karkaletsou, Stella Malichetoudi, Evgenios Eftalitsidis, Andreas Girod and Maria Koffa
Int. J. Mol. Sci. 2026, 27(13), 5897; https://doi.org/10.3390/ijms27135897 - 30 Jun 2026
Viewed by 1159
Abstract
Chromosomal instability (CIN) arising from mitotic errors is a hallmark of cancer progression, yet how specific spindle assembly factors are co-opted to support aggressive tumor phenotypes remains incompletely understood. Hepatoma Upregulated Protein (HURP/DLGAP5), a Ran-regulated microtubule-associated protein essential for kinetochore fiber stabilization and [...] Read more.
Chromosomal instability (CIN) arising from mitotic errors is a hallmark of cancer progression, yet how specific spindle assembly factors are co-opted to support aggressive tumor phenotypes remains incompletely understood. Hepatoma Upregulated Protein (HURP/DLGAP5), a Ran-regulated microtubule-associated protein essential for kinetochore fiber stabilization and chromosome congression, is frequently overexpressed in aggressive cancers. Here, we investigated HURP’s role across a breast cancer metastatic gradient—immortalized MCF10A, the low-metastatic luminal T47D, and the highly metastatic triple-negative MDA-MB-231 cell lines—integrating quantitative spindle analysis, kinetochore tension measurements, spindle checkpoint profiling, migration dynamics, and three-dimensional spheroid modeling. We show that total HURP protein levels increase with metastatic potential, yet spindle-bound HURP is paradoxically reduced in MDA-MB-231 cells, indicating cytoplasmic mislocalization despite increased total protein levels. HURP silencing induced cell-line-specific defects: moderate disorganization and misorientation in MCF10A and T47D cells, but catastrophic spindle collapse, apoptosis, and G2/M arrest in MDA-MB-231 cells. Mechanistically, HURP depletion disrupted the spindle-associated levels and distributions of TPX2, Aurora-A, and NuMA in a subtype-dependent manner, implicating HURP as a context-dependent stabilizer of this mitotic regulatory axis. HURP loss reduced interkinetochore tension in all cell lines, but only MCF10A and T47D cells mounted a proportional BubR1-dependent checkpoint response; MDA-MB-231 cells showed reduced checkpoint signaling, consistent with constitutive spindle assembly checkpoint (SAC) attenuation in triple-negative breast cancer. Beyond mitosis, HURP depletion impaired collective migration and converted MDA-MB-231 cells from super-diffusive, amoeboid-like motility to sub-diffusive behavior, while minimally affecting the less aggressive cell lines. HURP-depleted MDA-MB-231 spheroids were significantly larger, less compact, and less spherical than controls, linking spindle regulation to tissue-level architectural coherence. These findings establish HURP as a multifunctional regulator coordinating mitotic fidelity, migration plasticity, and tumor architecture in breast cancer, with a selective dependency in highly metastatic cells, positioning it as a promising therapeutic target for aggressive breast cancers. Full article
(This article belongs to the Section Molecular Oncology)
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19 pages, 8708 KB  
Article
Genome-Wide Analysis of GLK Gene Family in Four Cotton Species Provides Insights into Their Involvement in Cotton Abiotic Stress Response
by Rui Tang, Xin Zhou, Shuangshuang Weng, Fei Wang, Rong Li, Quanliang Xie, Zihan Li, Shuangquan Xie, Aiping Cao, Lu Zhuo, Manhong Wang and Hongbin Li
Agriculture 2024, 14(11), 2086; https://doi.org/10.3390/agriculture14112086 - 19 Nov 2024
Cited by 3 | Viewed by 2293
Abstract
Cotton is a crucial economic crop that supplies natural fibers for the textile industry, with fiber quality being greatly impacted by abiotic stress throughout its growth stages. The Golden2-Like (GLK) gene family plays a key role in plant development and adaptation [...] Read more.
Cotton is a crucial economic crop that supplies natural fibers for the textile industry, with fiber quality being greatly impacted by abiotic stress throughout its growth stages. The Golden2-Like (GLK) gene family plays a key role in plant development and adaptation to abiotic stress. However, the specific functions and regulatory mechanisms of GLK members in cotton remain largely unexplored. In this study, a thorough analysis of GLK in four cotton species (Gossypium arboreum, G. raimondii, G. hirsutum, and G. barbadense) was conducted. A total of 198 GLK genes were identified in cotton. Conserved sequence analysis revealed that most GLK proteins contain two highly conserved domains: a MYB DNA-binding domain and a C-terminal (GCT) box. Promoter element analysis results show that the GLK gene family contains many stress response-related elements. Expression analysis demonstrated that GhGLK2, GhGLK11, GhGLK16, and GhGLK30 responded significantly to drought, salt, and temperature stresses. And GhGLK2, GhGLK13, GhGLK38, GhGLK42, and GhGLK46 responded significantly to cotton development. Yeast one-hybrid, yeast two-hybrid, and dual-luciferase assay results indicate that GhGLK2 interacts with GhGUN5, GhPIL6, GhNAC6, GhTPX2, and GhERF10. These findings suggest that these GhGLKs may play crucial roles in regulating the response to abiotic stress. Overall, this study provides a solid theoretical foundation for understanding the role of the GLK gene family in cotton’s response to abiotic stress. Full article
(This article belongs to the Section Crop Genetics, Genomics and Breeding)
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16 pages, 4247 KB  
Article
Modulation of the Functions of Goat Peripheral Blood Mononuclear Cells by Fasciola gigantica Thioredoxin Peroxidase In Vitro
by Ai-Ling Tian, Xiaowei Tian, Dan Chen, Mingmin Lu, Guillermo Calderón-Mantilla, Xiao-Dan Yuan, Xiangrui Li, Hany M. Elsheikha and Xing-Quan Zhu
Pathogens 2020, 9(9), 758; https://doi.org/10.3390/pathogens9090758 - 17 Sep 2020
Cited by 9 | Viewed by 4217
Abstract
The liver fluke Fasciola gigantica has a remarkable ability to establish a long-term infection within the hepatobiliary system of the mammalian definitive host. F. gigantica achieves this by producing excretory–secretory molecules, which have immunomodulatory activities. In an effort to elucidate the immunomodulatory functions [...] Read more.
The liver fluke Fasciola gigantica has a remarkable ability to establish a long-term infection within the hepatobiliary system of the mammalian definitive host. F. gigantica achieves this by producing excretory–secretory molecules, which have immunomodulatory activities. In an effort to elucidate the immunomodulatory functions of F. gigantica thioredoxin peroxidase protein (FgTPx), we expressed recombinant FgTPx (rFgTPx) in Escherichia coli bacteria and examined its effects on several functions of goat peripheral blood mononuclear cells (PBMCs) in vitro. Sequence analysis revealed that FgTPx is related to a thioredoxin-like superfamily. Western blot analysis showed that rFgTPx was recognized by the sera of goats experimentally infected by F. gigantica. The specific binding of rFgTPx protein to the surface of goat PBMCs was demonstrated by immunofluorescence staining. We investigated the influence of serial concentrations of rFgTPx on various functions of goat PBMCs. All concentrations of rFgTPx increased the secretion of interleukin-2 (IL-2), IL-4, IL-10, IL-17, transforming growth factor-beta (TGF-β), and interferon gamma (IFN-γ), but inhibited PBMC proliferation, migration, and monocyte phagocytosis. Goat PBMCs exposed to 20–40 μg/mL of rFgTPx secreted increased levels of nitric oxide (NO), and 10–40 μg/mL of rFgTPx promoted cell apoptosis. These findings indicate that rFgTPx influences various functions of goat PBMCs by interacting with a large number of cellular targets, ultimately to promote the parasite’s survival. The roles of rFgTPx and their interacting proteins warrant further investigation. Full article
(This article belongs to the Special Issue Animal Parasitic Diseases)
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16 pages, 4791 KB  
Article
Functional Divergence of Microtubule-Associated TPX2 Family Members in Arabidopsis thaliana
by Eva Dvořák Tomaštíková, Twan Rutten, Petr Dvořák, Alisa Tugai, Klara Ptošková, Beáta Petrovská, Daniel van Damme, Andreas Houben, Jaroslav Doležel and Dmitri Demidov
Int. J. Mol. Sci. 2020, 21(6), 2183; https://doi.org/10.3390/ijms21062183 - 22 Mar 2020
Cited by 23 | Viewed by 6739
Abstract
TPX2 (Targeting Protein for Xklp2) is an evolutionary conserved microtubule-associated protein important for microtubule nucleation and mitotic spindle assembly. The protein was described as an activator of the mitotic kinase Aurora A in humans and the Arabidopsis AURORA1 (AUR1) kinase. In contrast to [...] Read more.
TPX2 (Targeting Protein for Xklp2) is an evolutionary conserved microtubule-associated protein important for microtubule nucleation and mitotic spindle assembly. The protein was described as an activator of the mitotic kinase Aurora A in humans and the Arabidopsis AURORA1 (AUR1) kinase. In contrast to animal genomes that encode only one TPX2 gene, higher plant genomes encode a family with several TPX2-LIKE gene members (TPXL). TPXL genes of Arabidopsis can be divided into two groups. Group A proteins (TPXL2, 3, 4, and 8) contain Aurora binding and TPX2_importin domains, while group B proteins (TPXL1, 5, 6, and 7) harbor an Xklp2 domain. Canonical TPX2 contains all the above-mentioned domains. We confirmed using in vitro kinase assays that the group A proteins contain a functional Aurora kinase binding domain. Transient expression of Arabidopsis TPX2-like proteins in Nicotiana benthamiana revealed preferential localization to microtubules and nuclei. Co-expression of AUR1 together with TPX2-like proteins changed the localization of AUR1, indicating that these proteins serve as targeting factors for Aurora kinases. Taken together, we visualize the various localizations of the TPX2-LIKE family in Arabidopsis as a proxy to their functional divergence and provide evidence of their role in the targeted regulation of AUR1 kinase activity. Full article
(This article belongs to the Special Issue Plant Cell and Organism Development)
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22 pages, 4576 KB  
Article
Co-Expression Network Analysis and Hub Gene Selection for High-Quality Fiber in Upland Cotton (Gossypium hirsutum) Using RNA Sequencing Analysis
by Xianyan Zou, Aiying Liu, Zhen Zhang, Qun Ge, Senmiao Fan, Wankui Gong, Junwen Li, Juwu Gong, Yuzhen Shi, Baoming Tian, Yanling Wang, Ruixian Liu, Kang Lei, Qi Zhang, Xiao Jiang, Yulong Feng, Shuya Zhang, Tingting Jia, Lipeng Zhang, Youlu Yuan and Haihong Shangadd Show full author list remove Hide full author list
Genes 2019, 10(2), 119; https://doi.org/10.3390/genes10020119 - 6 Feb 2019
Cited by 37 | Viewed by 7075
Abstract
Upland cotton (Gossypium hirsutum) is grown for its elite fiber. Understanding differential gene expression patterns during fiber development will help to identify genes associated with fiber quality. In this study, we used two recombinant inbred lines (RILs) differing in fiber quality [...] Read more.
Upland cotton (Gossypium hirsutum) is grown for its elite fiber. Understanding differential gene expression patterns during fiber development will help to identify genes associated with fiber quality. In this study, we used two recombinant inbred lines (RILs) differing in fiber quality derived from an intra-hirsutum population to explore expression profiling differences and identify genes associated with high-quality fiber or specific fiber-development stages using RNA sequencing. Overall, 72/27, 1137/1584, 437/393, 1019/184, and 2555/1479 differentially expressed genes were up-/down-regulated in an elite fiber line (L1) relative to a poor-quality fiber line (L2) at 10, 15, 20, 25, and 30 days post-anthesis, respectively. Three-hundred sixty-three differentially expressed genes (DEGs) between two lines were colocalized in fiber strength (FS) quantitative trait loci (QTL). Short Time-series Expression Miner (STEM) analysis discriminated seven expression profiles; gene ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) annotation were performed to identify difference in function between genes unique to L1 and L2. Co-expression network analysis detected five modules highly associated with specific fiber-development stages, especially for high-quality fiber tissues. The hub genes in each module were identified by weighted gene co-expression network analysis. Hub genes encoding actin 1, Rho GTPase-activating protein with PAK-box, TPX2 protein, bHLH transcription factor, and leucine-rich repeat receptor-like protein kinase were identified. Correlation networks revealed considerable interaction among the hub genes, transcription factors, and other genes. Full article
(This article belongs to the Section Plant Genetics and Genomics)
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14 pages, 2022 KB  
Article
TPX2 Is a Prognostic Marker and Contributes to Growth and Metastasis of Human Hepatocellular Carcinoma
by Yuqi Huang, Wenbin Guo and Heping Kan
Int. J. Mol. Sci. 2014, 15(10), 18148-18161; https://doi.org/10.3390/ijms151018148 - 9 Oct 2014
Cited by 54 | Viewed by 8625
Abstract
Targeting protein for Xenopus kinesin-like protein 2 (TPX2), a microtubule-associated protein, impacts spindle assembly in human cells. Several studies have demonstrated that TPX2 is overexpressed in different types of human cancers and promotes tumor growth and metastasis. In this study, we found that [...] Read more.
Targeting protein for Xenopus kinesin-like protein 2 (TPX2), a microtubule-associated protein, impacts spindle assembly in human cells. Several studies have demonstrated that TPX2 is overexpressed in different types of human cancers and promotes tumor growth and metastasis. In this study, we found that the expression level of TPX2 was obviously higher in hepatocellular carcinoma (HCC) tissues than in matched nontumor tissues. Elevated expressions of TPX2 mRNA were observed in all HCC cell lines (HepG2, Hep3B, SMMC-7721, Bel-7402 and Huh7) as compared with that in a non-transformed hepatic cell line (LO2). Clinical analysis indicated that the positive expression of TPX2 was significantly correlated with venous infiltration, high Edmondson-Steiner grading and advanced TNM tumor stage in HCC. Furthermore, TPX2 was a novel prognostic marker for predicting 5-year overall survival (OS) and disease-free survival (DFS) of HCC patients. In vitro studies found that TPX2 knockdown significantly inhibited cell proliferation and viability in both Hep3B and HepG2 cells. Moreover, TPX2 knockdown obviously slowed down tumor growth in a nude mouse xenograft model. Otherwise, TPX2 knockdown prominently suppressed HCC cell invasion and migration. In conclusion, these results indicate that TPX2 may serve as a prognostic marker and promotes tumorigenesis and metastasis of HCC. Full article
(This article belongs to the Special Issue Advances in Molecular Oncology 2014)
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