Comparative anatomy of embryogenic and non-embryogenic calli from Pimpinella brachycarpa

被引:12
作者
Na, Haeyoung
Kim, Ki Woo
Kwack, Yurina
Kim, Sung Kyeom
Chun, Changhoo [1 ]
机构
[1] Seoul Natl Univ, Res Inst Agr & Life Sci, Seoul 151921, South Korea
[2] Seoul Natl Univ, Dept Plant Sci, Seoul 151921, South Korea
[3] Seoul Natl Univ, Natl Instrumentat Ctr Environm Management, Seoul 151921, South Korea
关键词
callus; differentiation; electron microscopy; embryo; regeneration;
D O I
10.1007/BF03030665
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Anatomical differences between embryogenic and non-embryogenic calli of Pimpinella brachycarpa were investigated by light microscopy and electron microscopy. Initial callus tissue emerged from explants after 14 d of culturing. The embryogenic calli (EC) were firm, rather opaque, and light yellow in color. The cells usually formed small, compact clusters. Nonembryogenic calli (NEC), however, were friable, semitransparent, and yellow or gray. These formed relatively larger and loosely held clusters. Scanning electron microscopy showed that EC were composed of individual compact and spherical cells that were rather regular in size and approximately 20 pm long. All were tightly held together and appeared to organize globular embryos. In contrast, the NEC comprised elongated and loosely held cells that were approximately So tm long. Tubular and u-shaped NEC cells protruded irregularly, and were of varying heights along the cell aggregates. Transmission electron microscopy of the EC revealed typical eukaryotic cytoplasmic components, including nuclei, mitochondria, and vacuoles in the cytoplasm enclosed by an electron-transparent cell wall. Based on the numerous ribosomes within the cytoplasm, these cells appeared to be well-organized and metabolically active. The NEC cells were much larger and more highly vacuolated than those of the EC. In ultrathin sections, the former seemed to be almost devoid of other cellular contents except for plastids and nuclei. Furthermore, EC and NEC showed different regeneration capacities in their somatic embryo formation. Most EC produced hyperhydric somatic embryos, followed by normal somatic embryos; whereas only a few shooted or rooted somatic embryos arose from the NEC.
引用
收藏
页码:344 / 350
页数:7
相关论文
共 31 条
[1]   Cycle characteristics in a temporary immersion bioreactor affect regeneration, morphology, water and mineral status of coffee (Coffea arabica) somatic embryos [J].
Albarrán, J ;
Bertrand, B ;
Lartaud, M ;
Etienne, H .
PLANT CELL TISSUE AND ORGAN CULTURE, 2005, 81 (01) :27-36
[2]   Identification of differentially expressed cDNA sequences and histological characteristics of Hevea brasiliensis calli in relation to their embryogenic and regenerative capacities [J].
Charbit, E ;
Legavre, T ;
Lardet, L ;
Bourgeois, E ;
Ferrière, N ;
Carron, MP .
PLANT CELL REPORTS, 2004, 22 (08) :539-548
[3]   RECONSIDERATION OF THE TERM VITRIFICATION AS USED IN MICROPROPAGATION [J].
DEBERGH, P ;
AITKENCHRISTIE, J ;
COHEN, D ;
GROUT, B ;
VONARNOLD, S ;
ZIMMERMAN, R ;
ZIV, M .
PLANT CELL TISSUE AND ORGAN CULTURE, 1992, 30 (02) :135-140
[4]   Automation of somatic embryo production [J].
Ibaraki, Y ;
Kurata, K .
PLANT CELL TISSUE AND ORGAN CULTURE, 2001, 65 (03) :179-199
[5]  
Ibaraki Y, 1998, T ASAE, V41, P247
[6]  
Ibaraki Yasuomi, 1997, Environment Control in Biology, V35, P63
[7]   Establishment of a reproducible tissue culture system for the induction of Arabidopsis somatic embryos [J].
Ikeda-Iwai, M ;
Satoh, S ;
Kamada, H .
JOURNAL OF EXPERIMENTAL BOTANY, 2002, 53 (374) :1575-1580
[8]   Endogenous hormone concentrations and embryogenic callus development in wheat [J].
Jiménez, VM ;
Bangerth, F .
PLANT CELL TISSUE AND ORGAN CULTURE, 2001, 67 (01) :37-46
[9]  
KARNOVSKY MJ, 1965, J CELL BIOL, V27, pA137
[10]  
KAUR N, 1992, PLANT PHYSIOL BIOCH, V30, P445