Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Sugarcane genome architecture revealed by chromosome-specific probes, implication for chromosome nomenclature

View through CrossRef
Sugarcane (Saccharum spp. hybrids) is probably the crop with the most complex genome. Modern cultivars (2n = 100–120) are highly polyploid and aneuploid, derived from interspecific hybridization between S. officinarum (2n = 80) and S. spontaneum (2n = 40–128). Based on the R570 genome sequence assembly, chromosome-specific oligo probes were designed and used in cytogenetic analysis to improve our understanding of the origin of the sugarcane genome and its architecture. The results validated a basic chromosome number of x = 10 for S. officinarum and x = 8 in most S. spontaneum. In S. spontaneum, a few accessions from North India with x = 10 and x = 9 were also identified. From a basic chromosome of x = 10, rearrangements occurred in two steps leading to x = 9 and then x = 8. Each step involved three chromosomes that were rearranged into two. Further polyploidization led to the wide geographical distribution of clones with x = 8. The S. spontaneum contribution to modern cultivars seems to originate from cytotypes with x = 8 and varies in proportion among cultivars. Modern cultivars have mainly 12 copies for each of the 10 basic chromosomes with variation between 10 and 13 copies. A few of these copies correspond to entire S. spontaneum chromosomes or interspecific recombinant chromosomes. In addition, a few inter-chromosome translocations were found. This difference in the basic chromosome number for the two species involved in cultivars led us to propose a nomenclature of the chromosomes that optimize the correspondence between the two species. This study substantially improved our understanding of the extreme complexity of the genomes of modern sugarcane cultivars.
Title: Sugarcane genome architecture revealed by chromosome-specific probes, implication for chromosome nomenclature
Description:
Sugarcane (Saccharum spp.
hybrids) is probably the crop with the most complex genome.
Modern cultivars (2n = 100–120) are highly polyploid and aneuploid, derived from interspecific hybridization between S.
officinarum (2n = 80) and S.
spontaneum (2n = 40–128).
Based on the R570 genome sequence assembly, chromosome-specific oligo probes were designed and used in cytogenetic analysis to improve our understanding of the origin of the sugarcane genome and its architecture.
The results validated a basic chromosome number of x = 10 for S.
officinarum and x = 8 in most S.
spontaneum.
In S.
spontaneum, a few accessions from North India with x = 10 and x = 9 were also identified.
From a basic chromosome of x = 10, rearrangements occurred in two steps leading to x = 9 and then x = 8.
Each step involved three chromosomes that were rearranged into two.
Further polyploidization led to the wide geographical distribution of clones with x = 8.
The S.
spontaneum contribution to modern cultivars seems to originate from cytotypes with x = 8 and varies in proportion among cultivars.
Modern cultivars have mainly 12 copies for each of the 10 basic chromosomes with variation between 10 and 13 copies.
A few of these copies correspond to entire S.
spontaneum chromosomes or interspecific recombinant chromosomes.
In addition, a few inter-chromosome translocations were found.
This difference in the basic chromosome number for the two species involved in cultivars led us to propose a nomenclature of the chromosomes that optimize the correspondence between the two species.
This study substantially improved our understanding of the extreme complexity of the genomes of modern sugarcane cultivars.

Related Results

Sugarcane
Sugarcane
This chapter is a review about sugarcane, one of the most important energy crops. It will describe some aspects of the production system, like varieties, pests and diseases, nutrie...
Regional genomic heritability mapping for agronomic traits in sugarcane
Regional genomic heritability mapping for agronomic traits in sugarcane
Abstract Background The identification of genomic regions involved in agronomic traits is the primary concern for sugarcane bre...
High quality sugarcane bagasse-citric acid particleboards
High quality sugarcane bagasse-citric acid particleboards
AbstractThe productivity of Indonesian sugarcane plantation, especially in East Java province reached 1.186.515 tonnes in 2017. Sugarcane liquid is extracted as sugar raw material ...
Irrigation Water Use Efficiency and Water Productivity of Commercial Sugarcane Hybrids under Water-Limited Conditions
Irrigation Water Use Efficiency and Water Productivity of Commercial Sugarcane Hybrids under Water-Limited Conditions
HighlightsSugarcane hybrids with improved IWUE have greater scope in sugarcane agriculture as irrigation water is getting scarce.Among sugarcane hybrids, Co 8371 registered high me...
The architecture of differences
The architecture of differences
Following in the footsteps of the protagonists of the Italian architectural debate is a mark of culture and proactivity. The synthesis deriving from the artistic-humanistic factors...
Effective Weed Management Strategies for Sustainable Cultivation of Sugarcane (Saccharum officinarum L.): A Comprehensive Review
Effective Weed Management Strategies for Sustainable Cultivation of Sugarcane (Saccharum officinarum L.): A Comprehensive Review
Sugarcane (Saccharum officinarum L.) is a significant crop in global agriculture, often referred to as "wonder cane" for its slow yet robust growth. Despite its importance, sugarca...

Back to Top