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In This Article

  • Summary
  • Abstract
  • Introduction
  • Protocol
  • Representative Results
  • Discussion
  • Acknowledgements
  • Materials
  • References
  • Reprints and Permissions

Summary

This protocol describes an efficient cabbage mesophyll protoplast system. Various oxygen-deficient treatments were tested, and the system showed a high activation of hypoxia-responsive genes, facilitating studies of the genetic and molecular mechanisms of flooding tolerance in Brassicaceae vegetables.

Abstract

As climate change brings more heavy rainfall, cabbage, a key Brassicaceae vegetable, faces significant yield losses due to flooding-induced hypoxia stress. To identify mechanisms of flooding tolerance in cabbages, a versatile platform for genetic functional studies is needed to overcome the transformation-recalcitrant nature of cabbages. In this study, a cabbage protoplast transient expression system and a corresponding protoplast hypoxia induction protocol were developed. This protocol achieved a high yield and integrity of protoplast isolation from cabbage leaves, with a transfection efficiency exceeding 40% using optimized enzymatic conditions. To alleviate potential hypoxic influence before treatments, the W5 solution was bubbled with oxygen gas to increase dissolved oxygen levels. Several chemicals for adjusting oxygen levels and physiological oxygen-scavenging treatments were tested, including EC-Oxyrase, OxyFluor, sodium sulfite, and an oxygen absorber pack. Dual-luciferase assays showed that promoters of anaerobic respiration response genes BoADH1 and BoSUS1L were activated in cabbage protoplasts after hypoxia treatments, with the highest induction level observed after treatment with the oxygen absorber pack. In summary, the cabbage protoplast transient expression system combined with hypoxia treatment demonstrates an efficient and convenient platform. This platform can facilitate studies of gene function and molecular mechanisms associated with hypoxia responses in cabbages.

Introduction

Global climate change has exacerbated flooding, which has emerged as an increasingly critical issue worldwide. Recent decades have witnessed an upward trend in the frequency of flooding events, resulting in substantial crop losses1,2. Cabbage (Brassica oleracea var. capitata L.), a vegetable of significant global importance, is susceptible to the adverse effects of heavy rainfall, necessitating the development of flooding-tolerant cabbage cultivars to ensure sustainable production in the face of extreme weather events. Therefore, understanding the molecular mechanisms associated with flooding....

Protocol

Two commercial cabbage (B. oleracea var. capitata) cultivars were utilized in this study: 'Fuyudori' and '228'. A graphical representation of the protocol workflow is shown in Figure 1. The details of the reagents and the equipment used in this study are listed in the Table of Materials.

1. Preparation of cabbage seedlings

  1. Sow 'Fuyudori' and '228' cabbage seeds using co.......

Representative Results

This work successfully developed a transient expression system utilizing cabbage protoplasts (see Figure 1 for workflow). Protoplasts were isolated from 2- to 3-week-old cabbage true leaves of appropriate size (Figure 2A) from commercial cabbage cultivars 'Fuyudori' and '228' using cellulase/macerozyme digestion and dark vacuum infiltration (Figure 2B,C). To mitigate the hypoxic conditions experience.......

Discussion

This protocol presents a streamlined method for protoplast isolation from two commercial cabbage cultivars. The efficacy of this method is primarily assessed through two critical quality control parameters: the yield of viable protoplasts and the efficiency of protoplast transfection. Implementing this protocol resulted in a yield exceeding 4.00 x 106 protoplasts·g−1·FW of mesophyll tissue from both cabbage cultivars (Figure 2E,F). This .......

Acknowledgements

This work was supported by the National Science and Technology Council (MOST 111-2313-B-002-029- and NSTC 112-2313-B-002-050-MY3). For Figure 1, the experimental icons were sourced from BioRender.com.

....

Materials

NameCompanyCatalog NumberComments
2-(N-morpholino) ethanesulfonic Acid (MES)PhytoTech LabsM825For enzyme solution preparation
228 cabbage seedsTakii & Co., Ltd. (Kyoto, Japan)
50 mL Conical TubeSPL Life Sciences50050For enzyme solution preparation
6-well tissue culture plateAlpha Plus16106For protoplast incubation
70 μm cell strainerSorfa SCS701For protoplast filtration
9-cm Petri dishAlpha Plus16001For enzymatic digestion
Anaerobic jarHIMEDIAAnaerobic Jar 3.5 LFor hypoxia treatment 
Bovine serum albuminSigma-AldrichA7906For W5 solution preparation and culture plate coating
Calcium chlorideJ.T.Baker131301For W5 solution and PEG solution preparation
Cellulase R10YakultFor enzyme solution preparation
DesiccatorTarsons 402030For vacuum infiltration
D-GlucoseBioshopGLU501For W5 solution preparation
Dissolved oxygen meterThermo ScientificOrion Star A223For oxygen measurement
D-MannitolSigma-AldrichM1902For enzyme solution, PEG solution, and MMG solution preparation
Dual-Luciferase Reporter Assay SystemPromegaE1960For Dual-luciferase reporter assay
EC-OxyraseOxyrase Inc.EC-0005For hypoxia treatment
Fuyudori cabbage seedsKobayashi Seed Co., Ltd. (Kakogawashi, Japan)
High-Speed refrigerated centrifugeHitachiCR21GIIIFor protoplast harvest
Macerozyme R10 YakultFor enzyme solution preparation
Magnesium chlorideAlfa Aesar12315For MMG solution preparation
MicrocentrifugeHitachiCT15REFor protoplast harvest
MicroplateGreiner655075For Dual-luciferase reporter assay
Microplate ReaderMolecular DevicesSpectraMax MiniFor Dual-luciferase reporter assay
Millex 0.22 μm syringe filterMerckSLGP033RSFor enzyme solution preparation
Oil Free Vacuum PumpRocker Rocker 300For vacuum infiltration
OxyFluorOxyrase Inc.OF-0005For hypoxia treatment
Oxygen absorber packMitsubishi Gas Chemical CompanyAnaeroPack, MGCC1For hypoxia treatment
Oxygen concentratorUTMOST PERFECTAII-XFor oxygen-bubbling in W5 solution
Plant substrateKlasmann-DeilmannPotgrond H substrateFor cabbage seedlings preparation
Plasmid Midi KitQIAGEN12145For purification of transfection-grade plasmid DNA 
Polyethylene Glycol 4000Fluka81240For protoplast transfection
Potassium chlorideJ.T.Baker304001For W5 solution preparation
Razor bladeGilletteFor cabbage leaf strips preparation
Sodium chlorideBioshopSOD002For W5 solution preparation
Sodium sulfiteSigma-AldrichS0505For hypoxia treatment
Water BathYihderBU-240DFor enzyme solution preparation

References

  1. Tanoue, M., Hirabayashi, Y., Ikeuchi, H. Global-scale river flood in the last 50 years. Sci Rep. 6 (1), 36021 (2016).
  2. Voesenek, L. a. C. J., Bailey-Serres, J. Flood adaptive traits and processes: An overview. New Phytol

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Cabbage Protoplast SystemHypoxia ToleranceBrassicaFlooding induced Hypoxia StressGenetic Functional StudiesProtoplast IsolationTransfection EfficiencyDissolved Oxygen LevelsAnaerobic Respiration Response GenesBoADH1BoSUS1LOxygen Absorber PackDual luciferase AssaysGene Function StudiesMolecular Mechanisms

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