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3D visualisation of voids in grapevine flowers and berries using X‐ray micro computed tomography
Author(s) -
Xiao Z.,
StaitGardner T.,
Willis S.A.,
Price W.S.,
Moroni F.J.,
Pagay V.,
Tyerman S.D.,
Schmidtke L.M.,
Rogiers S.Y.
Publication year - 2021
Publication title -
australian journal of grape and wine research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.65
H-Index - 77
eISSN - 1755-0238
pISSN - 1322-7130
DOI - 10.1111/ajgw.12480
Subject(s) - pedicel , vitis vinifera , x ray microtomography , biology , berry , computed tomography , botany , medicine , radiology
Background and Aim X‐ray micro computed tomography (micro‐CT) is a non‐destructive 3D imaging technique that has been applied to plant morphology and anatomical studies to gain a better understanding of physiological phenomena in vivo. It is particularly useful for imaging voids in undisturbed fragile tissues and therefore may be applied to the delicate flowers and soft berries of Vitis vinifera . The characterisation of gas spaces and channels can offer insights into the process of tissue aeration and this may have implications on cell function and vitality. We assessed the use of micro‐CT to visualise voids within these reproductive organs. Methods and Results The internal structures of flowers and berries were captured through rapid micro‐CT scanning and subsequently were recreated in 3D using image processing. The relative positions of the developing flower parts encased within the flower cap were visualised. Low density/porous tissue was identified within the pedicel and receptacle, connecting the lenticels with the interior of the berry. Voids were present in the proximal mesocarp of mature berries forming a ‘detachment zone’ in both seeded and seedless cultivars. Voids permeated the mesocarp of mature seedless grape cultivars, but not seeded grapes. Conclusion Micro‐CT offers new insights regarding the distribution of voids on the morphology and compositional heterogeneity of organs that are difficult to dissect and/or view with light microscopy. Significance of the Study A better understanding of the physiology and functionality of grapevine reproductive tissues may be achieved by 3D visualisation of internal structure in vivo.