Molecular Recognition and Signaling Cascades in Plant Immunity: PTI, ETI and beyond
Résumé
Plants are constantly exposed to broad spectrum of pathogens, ranging from bacteria and fungi to viruses and nematodes. Unlike animals, plants lack an adaptive immune system and instead depend on a complex, multilayered innate defense framework to counteract pathogenic attacks. This review delves into the intricate biological processes by which plants sense invading pathogens and transduce those signals to mount appropriate immune responses. The frontline of this inducible defense, termed Pattern-Triggered Immunity (PTI), is initiated when pattern recognition receptors (PRRs) located on the cell surface detect conserved molecular patterns unique to pathogens, known as PAMPs. Well-characterized receptors like FLS2 and CERK1 recognize microbial cues such as bacterial flagellin and fungal chitin, respectively. Once triggered, this recognition sets off a cascade of early immune responses marked by calcium ion fluxes, bursts of reactive oxygen species (ROS), and the activation of mitogen-activated protein kinases (MAPKs) which collectively drive large-scale transcriptional changes aimed at fortifying plant defense. However, many pathogens have evolved mechanisms to overcome PTI by secreting specialized effector molecules into the host, thereby promoting Effector-Triggered Susceptibility (ETS). To combat this, plants possess intracellular immune receptors, notably nucleotide-binding leucine-rich repeat (NLR) proteins, which detect these effectors directly or indirectly and activate a secondary, often more potent response known as Effector-Triggered Immunity (ETI). ETI frequently involves localized cell death at the infection site, termed the hypersensitive response (HR), which restricts pathogen spread. Additionally, immune activation often culminates in Systemic Acquired Resistance (SAR) a long-lasting, broad-spectrum defense response that primes distal, uninfected tissues against future infections. Central to the regulation and fine-tuning of these immune layers are hormonal pathways involving salicylic acid, jasmonic acid, and ethylene, which help determine the specificity, strength, and duration of immune responses.