Speed Breeding and the Acceleration of Genetic Gain in Crop Improvement: A Critical Appraisal of Evidence, Constraints and Programme-Level Consequences
Kadam Abhishek Deepak *
Department of Genetics and Plant Breeding, Professor Jayshankar Telangana Agricultural University, Rajendranagar,Hyderabad. India.
Bangar Vaibhav Dhanaji
Department of Genetics and Plant Breeding, Rajmata Vijayaraje Scindia Krishi Vishwa Vidyalaya, Gwalior. India.
Pranshi Dubey
Department of Genetics and Plant Breeding, Rajmata Vijayaraje Scindia Krishi Vishwa Vidyalaya, Gwalior. India.
*Author to whom correspondence should be addressed.
Abstract
Controlled-environment protocols that shorten the interval between successive generations, collectively described as speed breeding, have been presented as a decisive intervention in crop improvement. Protocols based on extended photoperiods, controlled temperature, modified light spectra, managed water and nutrient supply, high planting density and early harvest of immature seed now report four to seven generations per year in several annual species, and comparable acceleration has been demonstrated in clonally propagated and perennial species through flower induction rather than generation turnover. This review examines whether the accumulated evidence supports the claim that the technology is transformative for genetic gain, rather than merely for generation turnover. Literature was identified through Crossref Metadata Search, Europe PMC, the Directory of Open Access Journals and targeted citation searching, and was appraised for methodological adequacy, transferability and the alignment between reported outcomes and the components of the breeder’s equation. Three findings emerge. First, the evidence base is dominated by protocol development in a small number of long-day, self-pollinating annual species, and the physiological levers that accelerate development in those species are not neutral across germplasm, as allelic variation at photoperiod and circadian-clock loci determines both the magnitude of acceleration and its uniformity. Second, cycle-time reduction is supported by direct experimental evidence, whereas gains in selection accuracy, selection intensity and useful genetic variance under accelerated regimes are supported mainly by simulation and by a small number of correlation studies, so that projected gains in genetic gain per unit time remain partly extrapolated. Third, the technology interacts with resource constraints, energy demand, seed multiplication requirements and statutory variety registration in ways that are rarely quantified, and these interactions determine whether accelerated generation turnover reaches farmers. Priorities for future work include prospective comparisons of realised gain in operating programmes, systematic quantification of correlated response between accelerated and target environments, transparent reporting of energy and cost per fixed line, and extension to outcrossing, tropical and clonal species.
Keywords: Speed breeding, rapid generation advance, genetic gain, controlled environment agriculture, photoperiod extension, genomic selection, breeding cycle time, plant breeding methodology.