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Related Concept Videos

Sensory Modalities01:15

Sensory Modalities

4.0K
Sensation typically is the process by which the sensory receptors and sense organs detect stimuli from the internal and external environment and transmit this information to the central nervous system for processing.
General senses refer to the broad category of sensory information detected by receptors in the body and can be further grouped into somatic and visceral senses. Somatic sensations include touch, pressure, temperature, and pain and are essential for navigating our environment and...
4.0K
Introduction to Special Senses01:26

Introduction to Special Senses

7.8K
Sensory receptors play an integral part in comprehending our external and internal environments. They receive diverse stimuli, converting them into the nervous system's electrochemical signals. This conversion occurs as the stimulus alters the sensory neuron's cell membrane potential, instigating the generation of an action potential. This action potential is subsequently transmitted to the central nervous system (CNS), which integrates with other sensory data or higher cognitive...
7.8K
Sensory Perception: Organization of the Somatosensory System01:11

Sensory Perception: Organization of the Somatosensory System

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The somatosensory system is the central and peripheral nervous system component that senses and processes touch, pressure, pain, temperature, and body position or proprioception. The process of sensation takes place at three levels:
The receptor level:
The receptor level is the first stage of sensation. It involves the detection of a stimulus by specialized sensory receptors. The stimulus must arrive within the receptor's receptive field. Next, the receptor converts the energy of the...
11.5K
Tactile and Chemical Senses01:27

Tactile and Chemical Senses

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Tactile senses encompass touch, temperature, and pain, each mediated by specific receptors. Touch receptors detect mechanical energy or pressure against the skin. Sensory fibers from these receptors enter the spinal cord and relay information to the brain stem. Here, most fibers cross over to the opposite side of the brain. The touch information then moves to the thalamus, which projects a map of the body's surface onto the somatosensory areas of the parietal lobes in the cerebral cortex.
945
What is a Sensory System?01:31

What is a Sensory System?

101.6K
Sensory systems detect stimuli—such as light and sound waves—and transduce them into neural signals that can be interpreted by the nervous system. In addition to external stimuli detected by the senses, some sensory systems detect internal stimuli—such as the proprioceptors in muscles and tendons that send feedback about limb position.
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Parallel Processing01:20

Parallel Processing

791
The brain processes sensory information rapidly due to parallel processing, which involves sending data across multiple neural pathways at the same time. This method allows the brain to manage various sensory qualities, such as shapes, colors, movements, and locations, all concurrently. For instance, when observing a forest landscape, the brain simultaneously processes the movement of leaves, the shapes of trees, the depth between them, and the various shades of green. This enables a quick and...
791

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Related Experiment Video

Updated: Feb 21, 2026

Cross-Modal Multivariate Pattern Analysis
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Multimodal learning reveals plants' hidden sensory integration logic.

Kelly L Vomo-Donfack1,2, Rafael Jorge León Morcillo2, Grégory Ginot1

  • 1Université Sorbonne Paris Nord, LAGA, CNRS, UMR 7539, Laboratoire d'excellence Infibrex, Villetaneuse, F-93430, France.

BMC Genomics
|February 20, 2026
PubMed
Summary

Fungal symbionts reprogram plant sensory systems by coordinating responses, revealing new mechanisms for plant-microbe communication. This discovery offers insights into plant perception and targets for engineering resilient crops.

Keywords:
Arbuscular Mycorrhizal Fungi (AMF)Effector BiologyIntelligence (AI) in PlantsMultimodal Contrastive LearningPlant-Microbe InteractionsSensory Integration

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Area of Science:

  • Plant biology
  • Molecular plant-pathogen interactions
  • Plant-microbe symbiosis

Background:

  • Plants possess complex molecular networks for integrating environmental signals.
  • The fundamental rules of plant sensory integration are not fully understood.
  • Understanding plant-microbe communication is crucial for agriculture.

Purpose of the Study:

  • To investigate how microbial effectors reprogram plant sensory systems.
  • To uncover the mechanisms of plant-microbe communication during symbiosis.
  • To identify novel integration hubs and molecular pathways involved in plant sensory perception.

Main Methods:

  • Multimodal analysis of tomato roots interacting with fungal symbionts.
  • Computational analysis to confirm experimental findings and reveal novel pathways.
  • Investigation of transcriptional, metabolic, and phenotypic responses.

Main Results:

  • Microbial effectors systematically reprogram plant sensory systems.
  • Identified novel integration hubs where sensory pathways converge.
  • Discovered mechanisms including rewiring of iron homeostasis and suppression of jasmonate defenses.
  • Demonstrated isolation of nuclear splicing programs from metabolic noise.

Conclusions:

  • Symbionts exploit latent hubs where sensory pathways converge for communication.
  • Established a new paradigm for understanding plant-microbe communication.
  • Provided fundamental insights into plant perception.
  • Identified concrete targets for engineering stress-resilient crops.