Role of Chloroplast–Nucleus Communication in Plant Stress Response: An Integrated Review of Retrograde Signaling Pathways

Authors

Shalini Tiwari

Department of Botany, Shri Lal Bahadur Shastri Degree College, Gonda, Uttar Pradesh, India (India)

Amit Dubey

Department of Botany, Shri Lal Bahadur Shastri Degree College, Gonda, Uttar Pradesh, India (India)

Dr.Rekha Sharma

Department of Botany, Shri Lal Bahadur Shastri Degree College, Gonda, Uttar Pradesh, India (India)

Article Information

DOI: 10.51244/IJRSI.2026.1307000424

Subject Category: Education

Volume/Issue: 13/7 | Page No: 5793-5799

Publication Timeline

Submitted: 2026-08-06

Accepted: 2026-08-11

Published: 2026-08-22

Abstract

ABSTRACT
Plants are continuously exposed to environmental stresses such as drought, salinity, temperature fluctuations,
excessive light and pathogen attack. These stresses disturb cellular homeostasis and photosynthetic activity
and require coordinated responses between different cellular compartments. Chloroplasts are not only the
principal sites of photosynthesis but also important sensors of environmental changes. Information generated
within chloroplasts is transmitted to the nucleus through chloroplast-to-nucleus or retrograde signaling
pathways. The present review summarizes the role of major chloroplast-derived signals in plant stress
responses, based exclusively on the literature analyzed in the source dissertation. Particular attention is given
to reactive oxygen species (ROS), redox signals, tetrapyrrole intermediates, methylerythritol
cyclodiphosphate (MEcPP), 3′-phosphoadenosine 5′-phosphate (PAP), and the GENOMES UNCOUPLED
(GUN) pathway. The reviewed studies indicate that ROS represent important early stress signals, while PAP
and MEcPP function as metabolic messengers under specific stress conditions. Tetrapyrrole-associated
signaling contributes to the regulation of photosynthesis-associated nuclear genes. GUN1 and associated
nuclear regulatory factors participate in coordinating chloroplast status with nuclear gene expression.
Retrograde signaling was associated with drought, salinity, cold, heat, high-light and pathogen-related
responses. Interaction with abscisic acid, salicylic acid and jasmonic acid provides an additional regulatory
layer. The review indicates that chloroplast–nucleus communication is an integrated signaling network that
contributes to stress adaptation, cellular protection and plant survival.

Keywords

Keywords: Chloroplast, nucleus, retrograde signaling, ROS, PAP, MEcPP, tetrapyrrole, GUN1, plant stress.

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References

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