China builds world’s first custom plant immunity system for epidemic response Chinese researchers have built the world's first custom plant immunity system, using programmable synthetic immune receptors and AI to enable crops to develop immunity against emerging viruses, bacteria, and fungi within weeks instead of years. The team from the Chinese Academy of Sciences' Institute of Genetics and Developmental Biology and Qi Biodesign published their findings in Science, highlighting the platform's potential to fast-track disease-resistant crop breeding and respond to plant disease outbreaks, which threaten global food security. China builds world’s first custom plant immunity system for epidemic response Tailored biological tools could enable crops to quickly develop immunity against emerging viruses, bacteria and fungi, researchers say commercial crops https://www.scmp.com/topics/food-and-agriculture?module=inline&pgtype=article vulnerable to devastating outbreaks. Their programmable synthetic immune receptors can be introduced into plants to help them detect proteins made by specific bacteria, viruses and fungi, triggering an immune response to neutralise the threat, according to the team. artificial intelligence https://www.scmp.com/topics/artificial-intelligence?module=inline&pgtype=article AI , custom receptors could be engineered within weeks rather than years, fast-tracking the breeding of disease-resistant crops and enabling a quicker response to emerging plant diseases, the researchers said. “This work establishes a versatile platform for efficient plant immunity engineering,” the team from the Chinese Academy of Sciences’ Institute of Genetics and Developmental Biology and biotechnology company Qi Biodesign said in a paper published in the peer-reviewed journal Science last month. Around the world, essential crops are threatened by plant pathogens that can devastate agricultural yields and compromise global food security. Plant breeding programmes often introduce resistance genes that encode receptors capable of recognising proteins secreted by pathogens. When these receptors bind to their protein target, it can trigger an immune response. “However, this resistance is often rapidly overcome by fast-evolving pathogens, particularly in modern agricultural systems characterised by large-scale monoculture of genetically uniform crops,” the team said. This biological vulnerability is what heightens the threat of agro-terrorism and plant bioweapons, or pathogens purposefully introduced or modified to target specific crops.