Ethanol Causes Cell Death and Neuronal Differentiation Defect During Initial Neurogenesis of the Neural Retina by

Yu Gong1,2,3, Lingling Ge1,2, Qiyou Li1,2

  • 1Southwest Hospital/ Southwest Eye Hospital, Third Military Medical University (Army Medical University), Chongqing, 400038, People's Republic of China.

PubMed

Insights

Prenatal ethanol exposure harms fetal eye development by disrupting neural retina neurogenesis. This study reveals how ethanol causes cell death and differentiation defects, impacting eye development in Fetal Alcohol Syndrome (FAS).

Area of Science:

  • Developmental biology
  • Neuroscience
  • Toxicology

Background:

  • Fetal Alcohol Syndrome (FAS) causes severe ocular defects in over 90% of affected children.
  • Early pregnancy neurogenesis is critical for eye development and vulnerable to ethanol exposure.
  • Mechanisms of ethanol's impact on early human retinal development are not fully understood.

Purpose of the Study:

  • To investigate the effects and molecular mechanisms of short-term ethanol exposure on human embryonic neural retina development.
  • To utilize human retinal organoids (hROs) to model early retinal neurogenesis.

Main Methods:

  • Cultured human embryonic stem cell-derived retinal organoids (hROs).
  • Applied 1% (v/v) ethanol exposure.
  • Performed bulk RNA-sequencing (RNA-seq) and two-photon microscope live calcium imaging.
  • Analyzed calcium signaling dynamics and gene expression.

Main Results:

  • Ethanol significantly slowed hRO growth, induced cell death, and caused retinal ganglion cell differentiation defects.
  • Ethanol down-regulated RYR1 and CACNA1S, altering calcium signaling dynamics.
  • The calcium-binding protein RET mediated ethanol's effects, inhibiting neuron differentiation and promoting cell death.

Conclusions:

  • Ethanol disrupts early human neural retina neurogenesis through altered calcium signaling.
  • This provides a molecular basis for ocular abnormalities observed in Fetal Alcohol Syndrome (FAS).
  • Findings may inform preventative strategies against FAS-related eye defects.

Related Concept Videos

Synaptic Signaling01:12

Synaptic Signaling

Neurons communicate at synapses, or junctions, to excite or inhibit the activity of other neurons or target cells, such as muscles. Synapses may be chemical or electrical.
Chemical Synapses01:26

Chemical Synapses

Chemical synapses are specialized sites between two neurons or between a neuron and a non-neuronal cell like a muscle, glandular or sensory cell.
Because chemical synapses depend on the release of neurotransmitter molecules from synaptic vesicles to pass on their signal, there is an approximately one millisecond delay between when the axon potential reaches the presynaptic terminal and when the neurotransmitter leads to opening of postsynaptic ion channels. Additionally, this signaling is...
Chemical Synapses01:26

Chemical Synapses

Chemical synapses are specialized sites between two neurons or between a neuron and a non-neuronal cell like a muscle, glandular or sensory cell.
Because chemical synapses depend on the release of neurotransmitter molecules from synaptic vesicles to pass on their signal, there is an approximately one millisecond delay between when the axon potential reaches the presynaptic terminal and when the neurotransmitter leads to opening of postsynaptic ion channels. Additionally, this signaling is...
Photoreceptors and Visual Pathways01:22

Photoreceptors and Visual Pathways

At the molecular level, visual signals trigger transformations in photopigment molecules, resulting in changes in the photoreceptor cell's membrane potential. The photon's energy level is denoted by its wavelength, with each specific wavelength of visible light associated with a distinct color. The spectral range of visible light, classified as electromagnetic radiation, spans from 380 to 720 nm. Electromagnetic radiation wavelengths exceeding 720 nm fall under the infrared category, whereas...
Cellular Injury I: Introduction01:00

Cellular Injury I: Introduction

Cellular injury occurs when a cell cannot maintain homeostasis or adapt to stressors such as hypoxia, toxins, or trauma. Depending on severity and duration, injury may be reversible, allowing recovery, or irreversible, leading to cell death.General Mechanisms of Cell InjuryAlthough causes vary, most cellular injuries arise from a few key mechanisms that disrupt essential functions and often amplify one another. Cell survival depends on the extent and balance of these disturbances.ATP depletion...
Cellular Injury IlI: Cellular Death01:11

Cellular Injury IlI: Cellular Death

Cell death is the irreversible loss of cellular structure and function, representing the final stage of severe injury. It plays a key role in both normal physiology and disease.Types of Cell DeathThe two main types are necrosis and apoptosis, though others like necroptosis and pyroptosis also exist.Necrosis:Necrosis is an unregulated form of cell death caused by severe injury such as trauma, toxins, or ischemia. It is characterized by cell swelling, membrane loss, rupture, and leakage of...