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Ruilin Zhang

Publications and source records attributed to Ruilin Zhang.

3 recordsLinked to original sources

Derlin-1 promotes the efficient degradation of the cystic fibrosis transmembrane conductance regulator (CFTR) and CFTR folding mutants.

A complex involving Derlin-1 and p97 mediates the retrotranslocation and endoplasmic reticulum (ER)-associated degradation of misfolded proteins in yeast and is used by certain viruses to promote host cell protein degradation (Romisch, K. (2005) Annu. Rev. Cell Dev. Biol. 21, 435-456; Lilley, B. N., and Ploegh, H. L. (2004) Nature 429, 834-840; Ye, Y., Shibata, Y., Yun, C., Ron, D., and Rapoport, T. A. (2004) Nature 429, 841-847). We asked whether the components of this pathway are involved in the endoplasmic reticulum-associated degradation of the mammalian integral membrane protein, the cystic fibrosis transmembrane conductance regulator (CFTR), a substrate for the ubiquitin-proteasome system. We report that Derlin-1 and p97 formed complexes with CFTR in human airway epithelial cells. Derlin-1 interacted with nonubiquitylated CFTR, whereas p97 associated with ubiquitylated CFTR. Exogenous expression of Derlin-1 led to its co-localization with CFTR in the ER where it reduced wild type (WT) CFTR expression and efficiently degraded the disease-associated CFTR folding mutants, DeltaF508 and G85E (>90%). Consistent with this, Derlin-1 also reduced the amount of WT or DeltaF508 CFTR appearing in detergent-in-soluble aggregates. An approximately 70% knockdown of endogenous Derlin-1 by RNA interference increased the steady-state levels of WT and DeltaF508 CFTR by 10-15-fold, reflecting its significant role in CFTR degradation. Derlin-1 mediated the degradation of N-terminal CFTR fragments corresponding to the first transmembrane domain of CFTR, but CFTR fragments that incorporated additional domains were degraded less efficiently. These findings suggest that Derlin-1 recognizes misfolded, nonubiquitylated CFTR to initiate its dislocation and degradation early in the course of CFTR biogenesis, perhaps by detecting structural instability within the first transmembrane domain.

Animals↗

[Experimental reconstruction of extensive anterior defect of rabbit trachea with the use of free auricular cartilage].

OBJECTIVES: To determine whether free auricular cartilage grafts can be used to reconstruct the extensive anterior defect of rabbit trachea and observe the difference between autograft and allograft. METHODS: Twenty New Zealand white rabbits were divided into autograft group (n = 10) and allograft group (n = 10). All grafts were taken from the right auricle, and defect included 8 to 10 rings of trachea. The gross morphorlogical features, endoscopic examinations, biomechanic determinations and histological findings of grafts were assessed at 1,2,4,8 and 12 weeks after operation. RESULTS: Eighteen rabbits survived. Mild tracheal stenosis was observed under endoscope. The maximum stress per mm at 0,4,8 and 12 weeks was 2.54 +/- 0.19, 1.31 +/- 0.21, 1.72 +/- 0.22 and 1.96 +/- 0.08 kPa/mm, respectively. Histological analysis revealed that the viable chondrocytes and neochondrocytes at 12 weeks accounted for 62.0% +/- 3.45%, 65.89% +/- 48% in the autograft group and 60.1% +/- 3.98%, 55.20% +/- 7.57% in the allograft group. No marked immunological differences between the auto- and allograft groups were noted. CONCLUSIONS: Free auricular cartilage can be used to reconstruct the extensive anterior defect of trachea in both auto- and allo-transplantations.

Animals↗

[Tissue-engineered auricled cartilage: an experimental study].

OBJECTIVE: To study the feasibility of engineering auricled neocartilage with chitosan/polylacticacid-polycrylactone (PLA-PCL) network scaffolds and to search the difference between dynamic and silent chondrocytal culture techniques. METHODS: Chondrocytes from auricled cartilage of 4 weeks old New Zealand White rabbit were seeded onto chitosan/PLA-PCL network. Ten cell-polymer scaffolds were divided into two groups: dynamic group (n1 = 5) with rotating bioreactors and silent group (n2 = 5) with ordinary dishes to culture. Using scan electroscope, grossly histological and immunohistological techniques, the morphological evaluation was done individually at 1st week in vitro, 4th and 8th week in vivo. RESULTS: Chondrocytes adhered and grew up well on the network, but more quantities of chondrocytes, Glycoaminoglygan (GAG) and type II collagen were found in dynamic group. There was an obvious difference between dynamic and silent group (P < 0.05). CONCLUSION: Chitosan/PLA-PCL network scaffold is good for adhesions and growth of chondrocytes. Furthermore, dynamic cell culture method is better than silent method for formation of neocartilage.

Animals↗