Enhancing carrot somatic embryos survival during slow dehydration, by encapsulation and control of dehydration

被引:17
作者
Timbert, R
Barbotin, JN
Thomas, D
机构
[1] Lab. de Technologie Enzymatique, Univ. de Technologie de Compiegne, URA CNRS 1442, 60205 Compiègne Cedex
关键词
synthetic seeds; Daucus carota; somatic embryo; encapsulation; desiccation; germination;
D O I
10.1016/S0168-9452(96)04488-3
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
In order to obtain dry artificial seeds, carrot somatic embryos were encapsulated and dehydrated. Encapsulation in some hydrogels delayed the dehydration and preserved the water content of carrot somatic embryos. In particular, a matrix made of alginate with gellan gum was found to be the most efficient in maintaining a high water activity (a,) around somatic embryos. By delaying dehydration, and also rehydration, encapsulation seemed to protect somatic embryos against desiccation and imbibition damages, giving better germination and emergence of cotyledons. Matrices made of alginate mixed with kaolin or gellan gum were particularly adapted to protect the embryos during the dehydration. Apart from the matrix composition, the control of dehydration speed enhanced the survival and regeneration of encapsulated-dehydrated somatic embryos. Using a slow dehydration protocol (95-15% RH-relative humidity into the chamber-in 11.5 days), it was possible to exert different dehydration speeds. Slowing the dehydration between 70 and 45% RH stabilized the water activity (a(w)) of the encapsulation matrix, and enhanced the survival and regeneration frequencies of encapsulated-dehydrated embryos. In the absence of any maturing pretreatment, alginate-gellan gum encapsulated carrot somatic embryos, dehydrated to 15% RH, and rehydrated in moistured air (90% RH), germinated up to 72.9%. Therefore, encapsulation in alginate-gellan gum, combined with a slow dehydration, leads to enhance the somatic embryos' desiccation tolerance.
引用
收藏
页码:215 / 222
页数:8
相关论文
共 26 条
[1]   ENHANCED VIGOR OF DRY SOMATIC EMBRYOS OF MEDICAGO-SATIVA L WITH INCREASED SUCROSE [J].
ANANDARAJAH, K ;
MCKERSIE, BD .
PLANT SCIENCE, 1990, 71 (02) :261-266
[2]  
Barbotin J. N., 1993, Synseeds: applications of synthetic seeds to crop improvement., P65
[3]   OSMOTIC-STRESS AND WATER-STRESS HAVE OPPOSITE EFFECTS ON PUTRESCINE AND PROLINE PRODUCTION IN EXCISED RICE LEAVES [J].
CHEN, CT ;
KAO, CH .
PLANT GROWTH REGULATION, 1993, 13 (02) :197-202
[4]  
Crank J, 1979, MATH DIFFUSION
[5]  
DEREUDDRE J, 1991, CRYOLETTERS, V12, P125
[6]   MEASUREMENT OF OXYGEN CONCENTRATION GRADIENTS IN GEL-IMMOBILIZED RECOMBINANT ESCHERICHIA-COLI [J].
HOOIJMANS, CM ;
BRIASCO, CA ;
HUANG, J ;
GERAATS, BGM ;
BARBOTIN, JN ;
THOMAS, D ;
LUYBEN, KCAM .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 1990, 33 (06) :611-618
[7]   EFFECTS OF ABSCISIC-ACID ON THE INDUCTION OF DESICCATION TOLERANCE IN CARROT SOMATIC EMBRYOS [J].
IIDA, Y ;
WATABE, K ;
KAMADA, H ;
HARADA, H .
JOURNAL OF PLANT PHYSIOLOGY, 1992, 140 (03) :356-360
[8]  
JANICK J, 1989, IN VITRO CELL DEV B, V25, P1167, DOI 10.1007/BF02621269
[9]   PHYSIOLOGICAL BEHAVIOR OF ENCAPSULATED SOMATIC EMBRYOS [J].
KERSULEC, A ;
BAZINET, C ;
CORBINEAU, F ;
COME, D ;
BARBOTIN, JN ;
HERVAGAULT, JF ;
THOMAS, D .
BIOMATERIALS ARTIFICIAL CELLS AND IMMOBILIZATION BIOTECHNOLOGY, 1993, 21 (03) :375-381
[10]  
Kim Y.H., 1990, ACTA HORTIC, V280, P23