Suppr超能文献

[具体物种名称1]和[具体物种名称2]([亚属名称]亚属)的陷阱结构

The Trap Architecture of and (subg. ).

作者信息

Płachno Bartosz J, Świątek Piotr, Adamec Lubomír, Carvalho Samanta, Miranda Vitor F O

机构信息

Department of Plant Cytology and Embryology, Institute of Botany, Jagiellonian University, Kraków, Poland.

Department of Animal Histology and Embryology, University of Silesia in Katowice, Katowice, Poland.

出版信息

Front Plant Sci. 2019 Mar 26;10:336. doi: 10.3389/fpls.2019.00336. eCollection 2019.

Abstract

are carnivorous plants which have small hollow vesicles as suction traps that work underwater by means of negative pressure and watertightness of the entrance for capturing small animal prey. and have specific thick-walled traps, which are triangular in a transverse section but their functioning is unclear. Some authors suggest that the trap door in acts as a simple valve without a suction trapping mechanism. Our main aim was to check the anatomical trap characters that are responsible for possible water outflow and maintaining negative pressure as main functional parts of the active trap suction mechanism in both species. Using different microscopic techniques, we investigated the ultrastructure of external trap glands, quadrifids, glands near the entrance (bifids, monofids), and also pavement epithelium. Quadrifids of both species have a similar structure to those known in other species from the genus, which possess the suction trap mechanism. Glands near the entrance in and , which are responsible for water pumping in other species, are typically developed as in other species in the genus and have pedestal cells which are transfer cells. The transfer cells also occur in glands of the pavement epithelium, which is again typically developed as in other species in the genus. Simple biophysical tests did not confirm reliably neither the negative underpressure formation in the traps nor the watertightness of the entrance in both species. Our anatomical results indirectly support the hypothesis that both species have suction traps like all other species, but the biophysical data rather suggest a passive valve mechanism.

摘要

是肉食性植物,具有小的中空囊泡作为吸力陷阱,通过负压和入口的水密性在水下发挥作用以捕获小型动物猎物。并且具有特定的厚壁陷阱,其横截面为三角形,但其功能尚不清楚。一些作者认为,[植物名称]中的陷阱门充当没有吸力捕获机制的简单阀门。我们的主要目的是检查负责可能的水流出和维持负压的解剖学陷阱特征,这是两种植物中活跃陷阱吸力机制的主要功能部分。使用不同的显微镜技术,我们研究了外部陷阱腺体、四分体、入口附近的腺体(二分体、单分体)以及扁平上皮的超微结构。两种植物的四分体结构与该属其他具有吸力陷阱机制的物种已知的结构相似。[植物名称1]和[植物名称2]入口附近负责抽水的腺体,与该属其他物种一样典型地发育,并且具有作为传递细胞的基座细胞。传递细胞也出现在扁平上皮的腺体中,这同样与该属其他物种一样典型地发育。简单的生物物理测试既没有可靠地证实两种植物陷阱中的负压形成,也没有证实入口的水密性。我们的解剖学结果间接支持了这一假设,即两种植物都像所有其他[植物名称]物种一样具有吸力陷阱,但生物物理数据更倾向于一种被动阀门机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db78/6445064/fe0541419946/fpls-10-00336-g001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验