1.Reprogramming Macrophage Phenotypes With Photobiomodulation for Improved Inflammation Control in ENT Organ Tissues
Ken WOO ; Yeon Soo KIM ; Celine ABUEVA ; Seung Hoon WOO
Clinical and Experimental Otorhinolaryngology 2025;18(1):1-13
Photobiomodulation (PBM), a noninvasive phototherapy that utilizes wavelengths between red and near-infrared light, has emerged as a promising approach for controlling inflammation by modulating macrophage polarization. This review investigates the therapeutic potential of PBM in treating ENT-specific inflammatory conditions, such as chronic rhinosinusitis and otitis media, focusing on its effects on macrophage phenotypes and evidence from preclinical studies. By promoting mitochondrial activity, increasing adenosine triphosphate production, and modulating reactive oxygen species, PBM has been shown to shift macrophages from a pro-inflammatory to an anti-inflammatory phenotype. Studies have demonstrated that PBM enhances tissue repair, reduces inflammatory markers, and promotes wound healing. Moreover, PBM facilitates the polarization of M2 macrophages, a crucial factor in resolving mucosal inflammation in the nasal, pharyngeal, and middle ear cavities, as well as restoring tissue homeostasis. The anti-inflammatory effects of PBM are attributed to its ability to influence several molecular mechanisms involved in inflammation regulation, particularly in ENT organ tissues, where recurrent inflammation can lead to chronic conditions such as otitis media or sinusitis. Furthermore, this review compares PBM to competing methods for reprogramming macrophages and treating inflammation, highlighting its advantages of minimal toxicity, simplicity, and precision in controlling ENT immune responses.
2.Reprogramming Macrophage Phenotypes With Photobiomodulation for Improved Inflammation Control in ENT Organ Tissues
Ken WOO ; Yeon Soo KIM ; Celine ABUEVA ; Seung Hoon WOO
Clinical and Experimental Otorhinolaryngology 2025;18(1):1-13
Photobiomodulation (PBM), a noninvasive phototherapy that utilizes wavelengths between red and near-infrared light, has emerged as a promising approach for controlling inflammation by modulating macrophage polarization. This review investigates the therapeutic potential of PBM in treating ENT-specific inflammatory conditions, such as chronic rhinosinusitis and otitis media, focusing on its effects on macrophage phenotypes and evidence from preclinical studies. By promoting mitochondrial activity, increasing adenosine triphosphate production, and modulating reactive oxygen species, PBM has been shown to shift macrophages from a pro-inflammatory to an anti-inflammatory phenotype. Studies have demonstrated that PBM enhances tissue repair, reduces inflammatory markers, and promotes wound healing. Moreover, PBM facilitates the polarization of M2 macrophages, a crucial factor in resolving mucosal inflammation in the nasal, pharyngeal, and middle ear cavities, as well as restoring tissue homeostasis. The anti-inflammatory effects of PBM are attributed to its ability to influence several molecular mechanisms involved in inflammation regulation, particularly in ENT organ tissues, where recurrent inflammation can lead to chronic conditions such as otitis media or sinusitis. Furthermore, this review compares PBM to competing methods for reprogramming macrophages and treating inflammation, highlighting its advantages of minimal toxicity, simplicity, and precision in controlling ENT immune responses.
3.Reprogramming Macrophage Phenotypes With Photobiomodulation for Improved Inflammation Control in ENT Organ Tissues
Ken WOO ; Yeon Soo KIM ; Celine ABUEVA ; Seung Hoon WOO
Clinical and Experimental Otorhinolaryngology 2025;18(1):1-13
Photobiomodulation (PBM), a noninvasive phototherapy that utilizes wavelengths between red and near-infrared light, has emerged as a promising approach for controlling inflammation by modulating macrophage polarization. This review investigates the therapeutic potential of PBM in treating ENT-specific inflammatory conditions, such as chronic rhinosinusitis and otitis media, focusing on its effects on macrophage phenotypes and evidence from preclinical studies. By promoting mitochondrial activity, increasing adenosine triphosphate production, and modulating reactive oxygen species, PBM has been shown to shift macrophages from a pro-inflammatory to an anti-inflammatory phenotype. Studies have demonstrated that PBM enhances tissue repair, reduces inflammatory markers, and promotes wound healing. Moreover, PBM facilitates the polarization of M2 macrophages, a crucial factor in resolving mucosal inflammation in the nasal, pharyngeal, and middle ear cavities, as well as restoring tissue homeostasis. The anti-inflammatory effects of PBM are attributed to its ability to influence several molecular mechanisms involved in inflammation regulation, particularly in ENT organ tissues, where recurrent inflammation can lead to chronic conditions such as otitis media or sinusitis. Furthermore, this review compares PBM to competing methods for reprogramming macrophages and treating inflammation, highlighting its advantages of minimal toxicity, simplicity, and precision in controlling ENT immune responses.
4.Optogenetic manipulation of organoids: advances, applications, and future prospects
Celine ABUEVA ; Nathaniel CARPENA
Medical Lasers 2025;14(2):65-71
Optogenetics, which uses light-sensitive proteins to regulate cellular activity, has transformed developmental biology by allowing precise spatiotemporal control of the critical signaling pathways. When paired with organoid technology, optogenetics offers an extraordinary tool for investigating differentiation, tissue morphogenesis, and organogenesis. This review examines the recent progress in the optogenetic manipulation of organoids, emphasizing its applications in directing stem cell differentiation, analyzing tissue morphogenesis, and modeling organ development. In neural differentiation, optogenetics has been used to activate Wnt signaling, fostering the generation of neural progenitors. Similarly, in cardiac differentiation, light-induced modulation of the BMP and Wnt pathways has supported the formation of functional cardiomyocytes. Optogenetic tools also enable researchers to explore the mechanical forces in tissue development by regulating cytoskeletal factors such as RhoA and Rac1. Furthermore, researchers can investigate organ patterning and regeneration by activating specific morphogens, such as Sonic hedgehog or Notch. Despite these advancements, challenges persist, such as enhancing light delivery in three-dimensional structures and developing more precise genetic engineering techniques. Future directions should involve integrating optogenetics with high-throughput imaging and single-cell analysis to improve the understanding of tissue development and disease modeling.This review underscores optogenetics as a groundbreaking approach for propelling stem cell research, regenerative medicine, and developmental biology.

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