Splicing of precursors to mRNA in higher plants: mechanism, regulation and sub-nuclear organisation of the spliceosomal machinery
- 1 October 1996
- journal article
- review article
- Published by Springer Nature in Plant Molecular Biology
- Vol. 32 (1-2) , 1-41
- https://doi.org/10.1007/bf00039375
Abstract
The removal of introns from pre-mRNA transcripts and the concomitant ligation of exons is known as pre-mRNA splicing. It is a fundamental aspect of constitutive eukaryotic gene expression and an important level at which gene expression is regulated. The process is governed by multiple cis-acting elements of limited sequence content and particular spatial constraints, and is executed by a dynamic ribonucleoprotein complex termed the spliceosome. The mechanism and regulation of pre-mRNA splicing, and the sub-nuclear organisation of the spliceosomal machinery in higher plants is reviewed here. Heterologous introns are often not processed in higher plants indicating that, although highly conserved, the process of pre-mRNA splicing in plants exhibits significant differences that distinguish it from splicing in yeast and mammals. A fundamental distinguishing feature is the presence of and requirement for AU or U-rich intron sequence in higher-plant pre-mRNA splicing. In this review we document the properties of higher-plant introns and trans-acting spliceosomal components and discuss the means by which these elements combine to determine the accuracy and efficiency of pre-mRNA processing. We also detail examples of how introns can effect regulated gene expression by affecting the nature and abundance of mRNA in plants and list the effects of environmental stresses on splicing. Spliceosomal components exhibit a distinct pattern of organisation in higher-plant nuclei. Effective probes that reveal this pattern have only recently become available, but the domains in which spliceosomal components concentrate were identified in plant nuclei as enigmatic structures some sixty years ago. The organisation of spliceosomal components in plant nuclei is reviewed and these recent observations are unified with previous cytochemical and ultrastructural studies of plant ribonucleoprotein domains.Keywords
This publication has 314 references indexed in Scilit:
- Requirement of U12 snRNA for in Vivo Splicing of a Minor Class of Eukaryotic Nuclear Pre-mRNA IntronsScience, 1996
- A Novel Spliceosome Containing U11, U12, and U5 snRNPs Excises a Minor Class (AT–AC) Intron In VitroCell, 1996
- A mammalian gene with introns instead of exons generating stable RNA productsNature, 1996
- Nonrandom gene organization: structural arrangements of specific pre-mRNA transcription and splicing with SC-35 domains.The Journal of cell biology, 1995
- Differential interaction of splicing snRNPs with coiled bodies and interchromatin granules during mitosis and assembly of daughter cell nuclei.The Journal of cell biology, 1994
- A serine kinase regulates intracellular localization of splicing factors in the cell cycleNature, 1994
- Evidence for channeled diffusion of pre-mRNAs during nuclear RNA transport in metazoans.The Journal of cell biology, 1993
- Changes in the frequency of two types of nuclear body during the interphase of meristematic plant cellsProtoplasma, 1983
- The ultrastructure of nuclear bodies in interphase plant cell nucleiProtoplasma, 1983
- Nucleolus-associated bodies (karyosomes) in dividing and differentiating plant cellsProtoplasma, 1983