Pectic homogalacturonan (HG) is one of the main constituents of plant cell walls. When processed to low degrees of esterification, HG can form complexes with divalent calcium ions. These macromolecular structures (also called egg boxes) play an important role in determining cell wall biomechanics and in mediating cell-to-cell adhesion. Current immunological methods enable only steady-state detection of egg box formation in situ. Here we present a tool for efficient real-time visualisation of available sites for HG crosslinking within cell wall microdomains. Our approach is based on calcium-mediated binding of fluorescently-tagged long oligogalacturonides (OGs) with endogenous de-esterified HG. We established that more than seven galacturonic acid residues in the HG chain are required to form a stable complex with endogenous HG through calcium complexation in situ, confirming a recently suggested thermodynamic model. Using defined carbohydrate microarrays, we show that the long OG probe binds exclusively to HG that has a very low degree of esterification and in the presence of divalent ions. We used this probe to study real-time dynamics of HG during elongation of Arabidopsis pollen tubes and root hairs. Our results suggest different spatial organisation of HG incorporation and processing in cell walls of these two tip-growing structures.

Oligogalacturonide-derived molecular probe demonstrates the dynamics of calcium-mediated pectin complexation in cell walls of tip-growing structures / Mravec, J; Kračun, Sk; G. Rydahl, M; Westereng, B; Pontiggia, Daniela; DE LORENZO, Giulia; Domozych, Ds; Willats, Wgt. - In: PLANT JOURNAL. - ISSN 0960-7412. - STAMPA. - 91:3(2017), pp. 534-546. [10.1111/tpj.13574]

Oligogalacturonide-derived molecular probe demonstrates the dynamics of calcium-mediated pectin complexation in cell walls of tip-growing structures

PONTIGGIA, Daniela;DE LORENZO, Giulia;
2017

Abstract

Pectic homogalacturonan (HG) is one of the main constituents of plant cell walls. When processed to low degrees of esterification, HG can form complexes with divalent calcium ions. These macromolecular structures (also called egg boxes) play an important role in determining cell wall biomechanics and in mediating cell-to-cell adhesion. Current immunological methods enable only steady-state detection of egg box formation in situ. Here we present a tool for efficient real-time visualisation of available sites for HG crosslinking within cell wall microdomains. Our approach is based on calcium-mediated binding of fluorescently-tagged long oligogalacturonides (OGs) with endogenous de-esterified HG. We established that more than seven galacturonic acid residues in the HG chain are required to form a stable complex with endogenous HG through calcium complexation in situ, confirming a recently suggested thermodynamic model. Using defined carbohydrate microarrays, we show that the long OG probe binds exclusively to HG that has a very low degree of esterification and in the presence of divalent ions. We used this probe to study real-time dynamics of HG during elongation of Arabidopsis pollen tubes and root hairs. Our results suggest different spatial organisation of HG incorporation and processing in cell walls of these two tip-growing structures.
2017
Plant cell wall; oligogalacturonides; rabidopsis thaliana; calcium; carbohydrate microarrays; egg boxes; fluorescent imaging; homogalacturonan, pollen tubes, root hairs
01 Pubblicazione su rivista::01a Articolo in rivista
Oligogalacturonide-derived molecular probe demonstrates the dynamics of calcium-mediated pectin complexation in cell walls of tip-growing structures / Mravec, J; Kračun, Sk; G. Rydahl, M; Westereng, B; Pontiggia, Daniela; DE LORENZO, Giulia; Domozych, Ds; Willats, Wgt. - In: PLANT JOURNAL. - ISSN 0960-7412. - STAMPA. - 91:3(2017), pp. 534-546. [10.1111/tpj.13574]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/956217
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