Garg Ankur, Zhang Xin
Department of Biochemistry and Molecular Biology, Indiana University School of Medicine, Indianapolis, Indiana.
Departments of Ophthalmology, Pathology and Cell Biology, Columbia University, New York, New York.
Dev Dyn. 2017 Dec;246(12):970-980. doi: 10.1002/dvdy.24551. Epub 2017 Aug 18.
The lacrimal gland plays a pivotal role in keeping the ocular surface lubricated, and protecting it from environmental exposure and insult. Dysfunction of the lacrimal gland results in deficiency of the aqueous component of the tear film, which can cause dryness of the ocular surface, also known as the aqueous-deficient dry eye disease. Left untreated, this disease can lead to significant morbidity, including frequent eye infections, corneal ulcerations, and vision loss. Current therapies do not treat the underlying deficiency of the lacrimal gland, but merely provide symptomatic relief. To develop more sustainable and physiological therapies, such as in vivo lacrimal gland regeneration or bioengineered lacrimal gland implants, a thorough understanding of lacrimal gland development at the molecular level is of paramount importance. Based on the structural and functional similarities between rodent and human eye development, extensive studies have been undertaken to investigate the signaling and transcriptional mechanisms of lacrimal gland development using mouse as a model system. In this review, we describe the current understanding of the extrinsic signaling interactions and the intrinsic transcriptional network governing lacrimal gland morphogenesis, as well as recent advances in the field of regenerative medicine aimed at treating dry eye disease. Developmental Dynamics 246:970-980, 2017. © 2017 Wiley Periodicals, Inc.
泪腺在保持眼表润滑以及保护眼表免受外界环境暴露和损伤方面发挥着关键作用。泪腺功能障碍会导致泪膜水液成分缺乏,进而引起眼表干燥,即所谓的水液缺乏型干眼疾病。若不加以治疗,该疾病会引发严重的发病情况,包括频繁的眼部感染、角膜溃疡以及视力丧失。目前的治疗方法并未针对泪腺潜在的功能缺陷进行治疗,而仅仅是缓解症状。为了开发更具可持续性和生理性的治疗方法,例如体内泪腺再生或生物工程泪腺植入物,深入了解泪腺在分子水平上的发育过程至关重要。基于啮齿动物和人类眼睛发育在结构和功能上的相似性,人们已经开展了广泛的研究,以小鼠为模型系统来探究泪腺发育的信号传导和转录机制。在这篇综述中,我们阐述了目前对调控泪腺形态发生的外在信号相互作用和内在转录网络的理解,以及旨在治疗干眼疾病的再生医学领域的最新进展。《发育动力学》246:970 - 980,2017年。© 2017威利期刊公司。