Journal of Eexercise & Organ Cross Talk
Author = Shirvani, Hossein
Exercise & crosstalk between signalling pathways

Exerkines as precision mediators: Decoding the tissue-specific vesicular packaging and metabolic reprogramming of remote organs

Volume 5, Issue 4, Autumn 2025, Pages 220-221

https://doi.org/10.22122/jeoct.2025.569048.1184

Linda S. Pescatello, Hossein Shirvani

Abstract Dear Editor-in-Chief
While the systemic benefits of exercise are undeniable, the precise language of inter-organ communication remains a "black box." Recent advances suggest we are poised to decode this language, transitioning from a model of diffuse hormonal signaling to one of targeted vesicular trafficking and epigenetic reprogramming. This letter posits that the next frontier for the Journal of Exercise & Organ Cross Talk lies in elucidating the rules of cargo loading, addressing, and delivery within exercise-induced extracellular vesicles‒a process likely fundamental to the remarkable specificity of organ crosstalk.
This topic moves beyond cataloguing exerkines to interrogate the mechanisms of their targeted delivery and organ-specific effects. The most compelling frontier is understanding how exercise governs the packaging, release, and uptake of extracellular vesicles, including exosomes, which function as discrete signaling packets between organs. This intersects powerfully with metabolomics and epigenetics, bearing profound implications for metabolic disease, cancer, and neurodegeneration.
First, the paradigm is shifting from humoral to vesicular signaling. The field is moving beyond viewing exerkines as freely circulating factors to recognizing their active encapsulation into extracellular vesicles (EVs). These vesicles protect their cargo, enable tissue tropism (e.g., liver-derived EVs homing to adipose tissue or brain), and deliver diverse cargo‒proteins, microRNAs (miRNAs), long non-coding RNAs (lncRNAs), and metabolites. This mechanism explains specificity in organ crosstalk previously attributed to stochastic distribution (Vechetti Jr et al., 2021).
Second, regarding the "exercise metabolome" and organ reprogramming, focus has turned to exercise-induced metabolites (e.g, lactate, succinate) which serve as potent signaling molecules. A cutting-edge perspective is how these metabolites act as histone modifiers (e.g., via lactylation) in remote organs, directly altering gene expression in the liver, brain, and immune system to mediate long-term adaptive crosstalk (Xiao et al., 2025).
Third, the gut-muscle-brain axis represents a critical microbiome-mediated highway. Exercise modulates gut microbiota composition, which subsequently produces metabolites (e.g., short-chain fatty acids (SCFAs), bile acids) that signal to both muscle, enhancing anabolic processes, and brain, modulating neurogenesis and brain-derived neurotrophic factor (BDNF) expression. This tripartite axis is a major, yet underexplored, vector in systemic communication (Frampton et al., 2020; Liu et al., 2025).
Looking forward, the concept of personalized exerkine signatures presents a translational goal. Given individual variability in exerkine response, can we define an individual's "exerkine signature" to predict their metabolic or neuroprotective gains from exercise? This links the mechanistic basis of crosstalk directly to precision medicine.
We therefore urge the research community to prioritize the following key questions:
1. What are the exercise-intensity- and modality-dependent "sorting signals" that dictate cargo loading into EVs from distinct tissues?
2. How do tissue-specific EV uptake mechanisms confer selectivity to the remote effects of exercise?
3. To what extent do chronic exercise patterns establish organ-specific epigenetic "memories" via persistent metabolite signaling?
By leveraging single-vesicle analyses, spatially resolved metabolomics, and cell-type-specific models, we can advance from observing crosstalk to understanding its precise syntax. Decoding this language will not only illuminate fundamental physiology but also pave the way for rationally designed, organ-specific "exercise mimetic" therapies.

Exercise & crosstalk between signalling pathways

Organ crosstalk benefits during exercise

Volume 4, Issue 3, Summer 2024, Pages 243-244

https://doi.org/10.22122/jeoct.2024.490066.1133

Alexei Wong, Hossein Shirvani

Abstract Dear Editor-in-Chief
We are writing to highlight the significant benefits of organ crosstalk during exercise, a phenomenon that refers to the biochemical interactions among various tissues stimulated by different factors, with exercise being a prominent trigger (Sabaratnam et al., 2022). This phenomenon is increasingly acknowledged for its crucial role in sustaining metabolic health and staving off chronic diseases (Sabaratnam et al., 2022).
Typically, mechanisms of organ crosstalk encompass myokines, exerkines and extracellular vesicles (EVs). Acting as an endocrine organ, skeletal muscle releases myokines (both cytokines and peptides) into the circulation during exercise. These myokines enhance interactions between muscles and other vital organs like the liver, adipose tissue and brain, thus modulating metabolism and promoting overall health (Sabaratnam et al., 2022; Severinsen & Pedersen, 2020). The term "exerkines" collectively refers to exercise-induced signaling molecules released from various organs, including myokines from muscles, hepatokines from the liver and adipokines from fat tissue. These molecules are pivotal in mediating the beneficial effects of exercise on systemic health (Jaworska et al., 2024). Additionally, exercise prompts the release of extracellular vesicles that carry bioactive molecules, boosting organ communication. These vesicles transport proteins, lipids and nucleic acids, which play significant roles in intercellular communication and influence metabolic functions across different tissues (Severinsen & Pedersen, 2020; Verboven & Vechetti, 2023).
Current research highlights several key benefits of organ crosstalk during exercise, such as metabolic regulation, neuroprotective effects and adaptation to exercise. The interactions between myokines and other organ-derived factors are essential for regulating glucose and lipid metabolism as well as reducing inflammation, thus lowering the risk of metabolic disorders like type 2 diabetes and obesity (Sabaratnam et al., 2022; Severinsen & Pedersen, 2020). Some myokines are known to cross the blood-brain barrier, fostering neurogenesis and enhancing cognitive functions. For instance, myokines like irisin can affect levels of brain-derived neurotrophic factor (BDNF), which is vital for maintaining brain health (Severinsen & Pedersen, 2020; Verboven & Vechetti, 2023). Moreover, regular exercise modifies the concentration of circulating exerkines associated with various health conditions, a necessary adaptation for enhancing cardiovascular health and promoting muscle regeneration (Jaworska et al., 2024).
In summary, understanding the mechanisms behind organ crosstalk during exercise is fundamental for developing targeted interventions aimed at preventing chronic diseases. The dynamic interaction between skeletal muscle and other organs highlights the critical role of physical activity in fostering holistic health through complex biochemical signaling pathways. Continued research in this area may lead to novel therapeutic strategies that leverage these interactions for improved health outcomes.