arrow
Return

Rapid Solidification of Plant Latices from Campanula glomerata Driven by a Sudden Decrease in Hydrostatic Pressure

delete2025-03-01
delete0
delete
OA
AI
A
Arne Langhoff
P
Peschel, Astrid
C
Christian Leppin
S
Sebastian Kruppert
T
Thomas Speck
D
Diethelm Johannsmann *
DOI:10.3390/plants14050798delete
deleteOriginal
deleteShare
deleteSave
View PDF
Abstract

Abstract

En 中文
By monitoring the solidification of droplets of plant latices with a fast quartz crystal microbalance with dissipation monitoring (QCM-D), droplets from Campanula glomerata were found to solidify much faster than droplets from Euphorbia characias and also faster than droplets from all technical latices tested. A similar conclusion was drawn from optical videos, where the plants were injured and the milky fluid was stretched (sometimes forming fibers) after the cut. Rapid solidification cannot be explained with physical drying because physical drying is transport-limited and therefore is inherently slow. It can, however, be explained with coagulation being triggered by a sudden decrease in hydrostatic pressure. A mechanism based on a pressure drop is corroborated by optical videos of both plants being injured under water. While the liquid exuded by E. characias keeps streaming away, the liquid exuded by C. glomerata quickly forms a plug even under water. Presumably, the pressure drop causes an influx of serum into the laticifers. The serum, in turn, triggers a transition from a liquid-liquid phase separated state (an LLPS state) of a resin and hardener to a single-phase state. QCM measurements, optical videos, and cryo-SEM images suggest that LLPS plays a role in the solidification of C. glomerata.
Keywords:
self-healing
plant latices
QCM-D
solidification
liquid-liquid phase separation
AI Summary

AI Summary

Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

Plants cover
Plants
IF:
4.1
Papers:
2.2W
Citations:
6.4W

Organization

U
University of Freiburg
Scholars:
3.3W
Papers: 2.4W
Citations: 3.4W
T
tu clausthal
Scholars:
1.8K
Papers: 1.7K
Citations: 14