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Updated: Jun 8, 2026

Meiotic Spindle Assessment in Mouse Oocytes by siRNA-mediated Silencing
Published on: October 11, 2015
Oocyte spindle proteomics analysis leading to rescue of chromosome congression defects in cloned embryos
Zhiming Han1, Cheng-Guang Liang1, Yong Cheng1
1The Fels Institute for Cancer Research and Molecular Biology, Temple University School of Medicine.
Abstract:
Embryos produced by somatic cell nuclear transfer (SCNT) display low term developmental potential. This is associated with deficiencies in spindle composition prior to activation and at early mitotic divisions, including failure to assemble certain proteins on the spindle. The protein-deficient spindles are accompanied by chromosome congression defects prior to activation and during the first mitotic divisions of the embryo. The molecular basis for these deficiencies and how they might be avoided are unknown. Proteomic analyses of spindles isolated from normal metaphase II (MII) stage oocytes and SCNT constructs, along with a systematic immunofluorescent survey of known spindle-associated proteins were undertaken. This was the first proteomics study of mammalian oocyte spindles. The study revealed four proteins as being deficient in spindles of SCNT embryos in addition to those previously identified; these were clathrin heavy chain (CLTC), aurora B kinase, dynactin 4, and casein kinase 1 alpha. Due to substantial reduction in CLTC abundance after spindle removal, we undertook functional studies to explore the importance of CLTC in oocyte spindle function and in chromosome congression defects of cloned embryos. Using siRNA knockdown, we demonstrated an essential role for CLTC in chromosome congression during oocyte maturation. We also demonstrated rescue of chromosome congression defects in SCNT embryos at the first mitosis using CLTC mRNA injection. These studies are the first to employ proteomics analyses coupled to functional interventions to rescue a specific molecular defect in cloned embryos.
Insights
Somatic cell nuclear transfer (SCNT) cloned embryos have developmental issues due to spindle protein deficiencies. Restoring clathrin heavy chain (CLTC) in SCNT embryos rescues chromosome alignment defects, improving developmental potential.
Area of Science:
- Developmental Biology
- Reproductive Science
- Proteomics
Background:
- Somatic cell nuclear transfer (SCNT) produces embryos with low developmental potential.
- SCNT embryo defects are linked to abnormal spindle composition and chromosome alignment issues.
- The molecular causes of these spindle deficiencies and potential solutions remain unclear.
Purpose of the Study:
- To identify protein deficiencies in spindles of SCNT embryos using proteomics.
- To investigate the role of identified deficient proteins, particularly clathrin heavy chain (CLTC), in SCNT embryo development.
- To rescue chromosome congression defects in SCNT embryos through functional interventions.
Main Methods:
- Proteomic analysis of spindles from normal and SCNT oocytes.
- Immunofluorescent surveying of spindle-associated proteins.
- siRNA knockdown to assess CLTC function and CLTC mRNA injection for rescue experiments.
Main Results:
- Identified four novel deficient proteins in SCNT embryo spindles, including clathrin heavy chain (CLTC).
- Demonstrated CLTC's essential role in chromosome congression during oocyte maturation via siRNA.
- Successfully rescued chromosome alignment defects in SCNT embryos at the first mitosis by injecting CLTC mRNA.
Conclusions:
- SCNT embryos exhibit specific protein deficiencies, notably CLTC, impacting spindle function and chromosome alignment.
- CLTC is crucial for proper chromosome congression in oocytes and cloned embryos.
- Targeted restoration of CLTC can rescue key defects in SCNT embryos, offering a potential strategy to improve developmental outcomes.
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