合成特异性NF-κB激活小鼠模型的建立。

IF 2.1 3区 医学 Q2 ORTHOPEDICS
McKenzie E Sup, Adam C Abraham, Min Kyu M Kim, Stavros Thomopoulos
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引用次数: 0

摘要

腱鞘炎,或身体中肌腱插入骨的特定部位的炎症,可因过度使用而在孤立的关节中产生,也可作为自身免疫性疾病(如银屑病关节炎或脊椎关节炎)的并发症在多个关节中产生。然而,胃炎的发病机制尚不清楚,因此治疗策略有限。临床相关的动物模型将使研究人员能够确定驱动疾病的机制并评估新的治疗方法。因此,我们通过在Gli1+细胞中组成性激活NF-κB通路,建立了诱导炎性特异性炎症的小鼠模型。将Gli1CreERT小鼠与ikk β-过表达小鼠杂交,并在出生后5天给予他莫昔芬注射以诱导炎症。16周后,内皮细胞中IKKβ过表达导致机械性能受损,组织学改变,细胞外基质和炎症相关基因表达改变。过度使用跑步机造成的负荷增加并没有加剧这种表型。临床意义:该模型的建立对研究胃炎的发病机制和治疗方法有一定的参考价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of a Mouse Model of Enthesis-Specific NF-κB Activation.

Enthesitis, or inflammation specific to sites in the body where tendon inserts into bone, can arise in isolated joints from overuse or in multiple joints as a complication of an autoimmune condition such as psoriatic arthritis or spondyloarthritis. However, the pathogenesis of enthesitis is not well understood, so treatment strategies are limited. A clinically relevant animal model of enthesitis would allow investigators to determine mechanisms driving the disease and evaluate novel therapies. Therefore, we developed a murine model of inducible enthesis-specific inflammation by constitutively activating the NF-κB pathway in Gli1+ cells. Gli1CreERT mice were crossed with IKKβ-overexpression mice and given tamoxifen injections 5 days postnatally to induce enthesitis. Sixteen weeks of IKKβ overexpression in enthesis cells led to impaired mechanical properties, subtle histologic changes, and changes to expression of extracellular matrix- and inflammation-related genes. Increased loading from treadmill overuse activity did not exacerbate this phenotype. Clinical significance: The new murine model may have utility for studying the pathogenesis of enthesitis and approaches to treat the condition.

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来源期刊
Journal of Orthopaedic Research®
Journal of Orthopaedic Research® 医学-整形外科
CiteScore
6.10
自引率
3.60%
发文量
261
审稿时长
3-6 weeks
期刊介绍: The Journal of Orthopaedic Research is the forum for the rapid publication of high quality reports of new information on the full spectrum of orthopaedic research, including life sciences, engineering, translational, and clinical studies.
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