Page 40 - Read Online
P. 40

Yang et al. Soft Sci. 2025, 5, 46  https://dx.doi.org/10.20517/ss.2025.44       Page 37 of 39

                    2017, 7, 53916-24.  DOI  PubMed  PMC
               168.      Elsherif, M.; Hassan, M. U.; Yetisen, A. K.; Butt, H. Hydrogel optical fibers for continuous glucose monitoring. Biosens. Bioelectron.
                    2019, 137, 25-32.  DOI  PubMed
               169.      Guo, J.; Zhou, B.; Du, Z.; Yang, C.; Kong, L.; Xu, L. Soft and plasmonic hydrogel optical probe for glucose monitoring.
                    Nanophotonics 2021, 10, 3549-58.  DOI
               170.      Davies, S.; Hu, Y.; Blyth, J.; Jiang, N.; Yetisen, A. K. Reusable dual-photopolymerized holographic glucose sensors. Adv. Funct.
                    Mater. 2023, 33, 2214197.  DOI
               171.      Ujah, E.; Lai, M.; Slaughter, G. Ultrasensitive tapered optical fiber refractive index glucose sensor. Sci. Rep. 2023, 13, 4495.  DOI
                    PubMed  PMC
               172.      Wen, X.; Liu, Y.; Liu, Q.; et al. Glucose sensing based on hydrogel grating incorporating phenylboronic acid groups. Opt. Express.
                    2022, 30, 47541-52.  DOI  PubMed
               173.      Ahmed, I.; Elsherif, M.; Ali, M.; Al Ghaferi, A.; Mohammad, B.; Butt, H. Photonic hydrogel for continuous glucose monitoring using
                    smartphone readout. Mater. Design. 2023, 231, 112065.  DOI
               174.      Heo, Y. J.; Shibata, H.; Okitsu, T.; Kawanishi, T.; Takeuchi, S. Long-term in vivo glucose monitoring using fluorescent hydrogel
                    fibers. Proc. Natl. Acad. Sci. U. S. A. 2011, 108, 13399-403.  DOI  PubMed  PMC
               175.      Li, Y.; Liu, W.; Liu, R.; et al. 3D hybrid arrayed Ag/MOF multi-plasmon resonant cavity system for high-performance SPR sensing.
                    Opt. Laser. Technol. 2023, 167, 109825.  DOI
               176.      Ahmed, I.; El Turk, S.; Al Ghaferi, A.; Samad, Y. A.; Butt, H. Nanocomposite hydrogel-based optical fiber probe for continuous
                    glucose sensing. Small. Sci. 2024, 4, 2300189.  DOI  PubMed  PMC
               177.      Deng, C.; Zhao, Q.; Gan, Y.; et al. High-sensitivity hemoglobin detection based on polarization-differential spectrophotometry.
                    Biosens. Bioelectron. 2023, 241, 115667.  DOI  PubMed
               178.      Rahad, R.; Rakib, A.; Haque, M. A.; Sharar, S. S.; Sagor, R. H. Plasmonic refractive index sensing in the early diagnosis of diabetes,
                    anemia, and cancer: an exploration of biological biomarkers. Results. Phys. 2023, 49, 106478.  DOI
               179.      Luo, M.; Wang, Q. A reflective optical fiber SPR sensor with surface modified hemoglobin for dissolved oxygen detection. Alex.
                    Eng. J. 2021, 60, 4115-20.  DOI
               180.      Safaee, M. M.; Gravely, M.; Roxbury, D. A wearable optical microfibrous biomaterial with encapsulated nanosensors enables
                    wireless monitoring of oxidative stress. Adv. Funct. Mater. 2021, 31, 2006254.  DOI
               181.      Guo, Y.; Zheng, J.; Wang, Z.; Chen, G.; Hou, K.; Zhu, M. Biocompatible optical fiber for photomedical application. Giant 2023, 16,
                    100195.  DOI
               182.      Yang, K.; Feng, L.; Shi, X.; Liu, Z. Nano-graphene in biomedicine: theranostic applications. Chem. Soc. Rev. 2013, 42, 530-47.  DOI
                    PubMed
               183.      Brown, S. B.; Brown, E. A.; Walker, I. The present and future role of photodynamic therapy in cancer treatment. Lancet. Oncol.
                    2004, 5, 497-508.  DOI  PubMed
               184.      Lai, B.; Loshchenov, M.; Douplik, A.; et al. Three-dimensional fluence rate measurement and data acquisition system for minimally
                    invasive light therapies. Rev. Sci. Instrum. 2009, 80, 043104.  DOI  PubMed  PMC
               185.      Zein, R.; Selting, W.; Hamblin, M. R. Review of light parameters and photobiomodulation efficacy: dive into complexity. J. Biomed.
                    Opt. 2018, 23, 1-17.  DOI  PubMed  PMC
               186.      Huang, Y. Y.; Sharma, S. K.; Carroll, J.; Hamblin, M. R. Biphasic dose response in low level light therapy - an update. Dose.
                    Response. 2011, 9, 602-18.  DOI  PubMed  PMC
               187.      de Freitas, L. F.; Hamblin, M. R. Proposed mechanisms of photobiomodulation or low-level light therapy. IEEE. J. Sel. Top.
                    Quantum. Electron. 2016, 22, 7000417.  DOI  PubMed  PMC
               188.      Courtois, E.; Guy, J. B.; Axisa, F.; et al. Photobiomodulation by a new optical fiber device: analysis of the in vitro impact on
                    proliferation/migration of keratinocytes and squamous cell carcinomas cells stressed by X-rays. Lasers. Med. Sci. 2021, 36, 1445-54.
                    DOI  PubMed
               189.      Naeser, M. A.; Zafonte, R.; Krengel, M. H.; et al. Significant improvements in cognitive performance post-transcranial, red/near-
                    infrared light-emitting diode treatments in chronic, mild traumatic brain injury: open-protocol study. J. Neurotrauma. 2014, 31, 1008-
                    17.  DOI  PubMed  PMC
               190.      Pan, W. T.; Liu, P. M.; Ma, D.; Yang, J. J. Advances in photobiomodulation for cognitive improvement by near-infrared derived
                    multiple strategies. J. Transl. Med. 2023, 21, 135.  DOI  PubMed  PMC
               191.      Lee, T. L.; Ding, Z.; Chan, A. S. Can transcranial photobiomodulation improve cognitive function? A systematic review of human
                    studies. Ageing. Res. Rev. 2023, 83, 101786.  DOI  PubMed
               192.      Shen, J.; Chui, C.; Tao, X. Luminous fabric devices for wearable low-level light therapy. Biomed. Opt. Express. 2013, 4, 2925-37.
                    DOI  PubMed  PMC
               193.      Zuo, X.; Liang, Z.; Zhang, J.; et al. Photobiomodulation and diffusing optical fiber on spinal cord’s impact on nerve cells from
                    normal spinal cord tissue in piglets. Lasers. Med. Sci. 2022, 37, 259-67.  DOI  PubMed
               194.      Liang, Z.; Lei, T.; Wang, S.; et al. Photobiomodulation by diffusing optical fiber on spinal cord: a feasibility study in piglet model. J.
                    Biophotonics. 2020, 13, e201960022.  DOI  PubMed
               195.      Canales, A.; Jia, X.; Froriep, U. P.; et al. Multifunctional fibers for simultaneous optical, electrical and chemical interrogation of
                    neural circuits in vivo. Nat. Biotechnol. 2015, 33, 277-84.  DOI  PubMed
   35   36   37   38   39   40   41   42   43   44   45