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Genetic Secrets of Rice Pave Way for Future Farming and Conservation

A new study, seen in Nature Genetics and led by researchers at King Abdullah University of Science and Technology (KAUST; Saudi Arabia) and Wageningen University & Research (the Netherlands), provides new insights on rice evolution, showing how the DNA of this valuable crop has changed across species. The findings are expected to not only help with improving rice yields but also with the introduction of rice into regions where rice production is currently untenable.  

Rice is one of the first domesticated crops (approximately 10,000 years ago). The artificial selection farmers have made for nutrition and other traits that maximize profit have reduced its genetic diversity and thus its resilience to environmental stresses.  

On the other hand, the wild relatives of rice (i.e. Oryza) have experienced some 15 million years of evolution, which has given these relatives a remarkable array of genetic variation across their genomes (all the DNA in an organism) and thus an ability to adapt to all sorts of environmental conditions, like heat, drought, and salinity.  

"The genus Oryza has an incredibly rich collection of genomes. We were able to explain the consequences of the evolution on the collective genomes of rice and its wild relatives," explained KAUST Prof. Rod Wing, who led the study along with his postdoctoral research associate, Alice Fornasiero.  

Humans are diploid, meaning they inherit two sets of chromosomes—one from each parent. Anything more or less can be fatal. Plants can be polyploidy, meaning then can receive multiple sets of chromosomes from their parents. These extra sets result in a larger genome that can facilitate adaptation to new or stressful environments and the evolution of novel traits and even new species.   

The study examined nine tetraploid and two diploid wild relatives of rice. The researchers found that the species could be distinguished by subsets of the genomes. These differences were mostly due to transposable elements, also known as jumping genes because they are DNA sequences that move from one location in the genome to another and a common natural means for creating genetic diversity.  

Additionally, the existence of diploid and tetraploid species resulted in genomes that varied more than twice in size. In some of this massive DNA were genes that have strengthened the robustness of the plant against hotter temperatures, drier and saltier soil, and other environmental stresses common to the Middle East and increasing worldwide with climate change.  

The study was also able to determine the evolutionary tree of wild rice, showing when new species emerged. This history offers clues for when rice underwent significant stress that stimulated genomic changes for the plant to endure.

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Gleaner S98 Combines in Action | Harvesting Wheat Near Preston, Kansas

Video: Gleaner S98 Combines in Action | Harvesting Wheat Near Preston, Kansas

Kansas Wheat Harvest is in full swing!
Join me near Preston, Kansas as this farm harvests its 2026 winter wheat crop with two new Gleaner S98 combines. One combine is equipped with a MacDon FD240 FlexDraper while the second runs a Gleaner (AGCO) draper head, giving viewers a chance to compare both harvesting setups in the same field.

Keeping the combines moving is a powerful Versatile 610 Delta Track pulling a tandem axle Brent 1598 grain cart, hauling wheat from the combines so harvest can continue without stopping.
If you enjoy modern farm equipment, wheat harvest, combines, grain carts, and seeing how farms operate across America, I think you'll enjoy this one.

Equipment featured:
Gleaner S98 Combines (2)
MacDon FD240 FlexDraper Header
Gleaner (AGCO) Draper Header
Versatile 610 Delta Track Tractor
Brent 1598 Tandem Axle Grain Cart

Filmed near Preston, Kansas during the 2026 winter wheat harvest.