Function and three-dimensional structure of intervessel pit membranes in angiosperms: a review

被引:67
|
作者
Kaack, Lucian [1 ]
Altaner, Clemens M. [2 ]
Carmesin, Cora [1 ]
Diaz, Ana [3 ]
Holler, Mirko [3 ]
Kranz, Christine [4 ]
Neusser, Gregor [4 ]
Odstrcil, Michal [3 ,5 ]
Schenk, H. Jochen [6 ]
Schmidt, Volker [7 ]
Weber, Matthias [7 ]
Ya, Zhang [1 ,8 ]
Jansen, Steven [1 ]
机构
[1] Ulm Univ, Inst Systemat Bot & Ecol, Albert Einstein Allee 11, D-89081 Ulm, Germany
[2] Univ Canterbury, New Zealand Sch Forestry, Private Bag 4800, Christchurch, New Zealand
[3] Paul Scherrer Inst, Forschungsstr 111, CH-5232 Villigen, Switzerland
[4] Ulm Univ, Inst Analyt & Bioanalyt Chem, Albert Einstein Allee 11, D-89081 Ulm, Germany
[5] Carl Zeiss SMT, Carl Zeiss Str 22, D-73447 Oberkochen, Germany
[6] Calif State Univ Fullerton, Dept Biol Sci, Fullerton, CA 92834 USA
[7] Ulm Univ, Inst Stochast, Helmholtzstr 18, D-89069 Ulm, Germany
[8] Anhui Normal Univ, Coll Life Sci, Beijingdong Rd 1, Wuhu 241000, Anhui, Peoples R China
基金
美国国家科学基金会;
关键词
Pit membrane; vessel; xylem; angiosperms; embolism; air-seeding; porous medium; ultrastructure; CELLULOSE NANOCRYSTAL AEROGELS; DROUGHT-INDUCED EMBOLISM; PROGRAMMED CELL-DEATH; BORDERED PIT; CAVITATION RESISTANCE; ELECTRON-MICROSCOPY; HYDRAULIC CONDUCTANCE; XYLEM VULNERABILITY; TRACHEARY ELEMENTS; CYTOSKELETAL BASIS;
D O I
10.1163/22941932-40190259
中图分类号
S7 [林业];
学科分类号
0829 ; 0907 ;
摘要
Pit membranes in bordered pits of tracheary elements of angiosperm xylem represent primary cell walls that undergo structural and chemical modifications, not only during cell death but also during and after their role as safety valves for water transport between conduits. Cellulose microfibrils, which are typically grouped in aggregates with a diameter between 20 to 30 nm, make up their main component. While it is clear that pectins and hemicellulose are removed from immature pit membranes during hydrolysis, recent observations of amphiphilic lipids and proteins associated with pit membranes raise important questions about drought-induced embolism formation and spread via air-seeding from gas-filled conduits. Indeed, mechanisms behind air-seeding remain poorly understood, which is due in part to little attention paid to the three-dimensional structure of pit membranes in earlier studies. Based on perfusion experiments and modelling, pore constrictions in fibrous pit membranes are estimated to be well below 50 nm, and typically smaller than 20 nm. Together with the low dynamic surface tensions of amphiphilic lipids at air-water interfaces in pit membranes, 5 to 20 nm pore constrictions are in line with the observed xylem water potentials values that generally induce spread of embolism. Moreover, pit membranes appear to show ideal porous medium properties for sap flow to promote hydraulic efficiency and safety due to their very high porosity (pore volume fraction), with highly interconnected, non-tortuous pore pathways, and the occurrence of multiple pore constrictions within a single pore. This three-dimensional view of pit membranes as mesoporous media may explain the relationship between pit membrane thickness and embolism resistance, but is largely incompatible with earlier, two-dimensional views on air-seeding. It is hypothesised that pit membranes enable water transport under negative pressure by producing stable, surfactant coated nanobubbles while preventing the entry of large bubbles that would cause embolism.
引用
收藏
页码:673 / 702
页数:30
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