World Malaria Report (2019).https://www.who.int/publications/i/item/world-malaria-report-(2019)
R.B. Gowda, M.S. Manna, K. Saara, P. Sharan, Detection of Plasmodium Falciparum Parasite Intraerythrocytic Stages using One Dimensional Distributed Bragg Reflector Biosensor, IEEE Reg. 10 Humanit. Technol. Conf. R10-HTC, 2021-Septe (2021). https://doi.org/10.1109/R10-HTC53172.2021.9641586
P.Y. Liu, L.K. Chin, W. Ser, H.F. Chen, C.M. Hsieh, C.H. Lee, K.B. Sung, T.C. Ayi, P.H. Yap, B. Liedberg, Wang K cell refractive index for cell biology and disease diagnosis: past, present and future. Lab. Chip. 16(4), 634–644 (2016)
S. Bendib, C. Bendib, Photonic crystals for malaria detection. J. Biosens. Bioelectron. 9(257) (2018)
B.K. Wilson, M.R. Behrend, M.P. Horning, Hegg MC detection of malarial byproduct hemozoin utilizing its unique scattering properties. Opt. Express. 19(13), 12190–12196 (2011)
N. Tangpukdee, C. Duangdee, P. Wilairatana, S. Krudsood, Malaria diagnosis: a brief review. Korean J. Parasitol. 47(2), 93 (2009)
N. Ranadive, S. Kunene, S. Darteh, N. Ntshalintshali, N. Nhlabathi, N. Dlamini, S. Chitundu, M. Saini, M. Murphy, A. Soble, Schwartz A limitations of rapid diagnostic testing in patients with suspected malaria: a diagnostic accuracy evaluation from Swazi land, a low-endemicity country aiming for malaria elimination. Clin. Infect. Dis. 64(9), 1221–1227 (2017)
C. Delahunt, M.P. Horning, B.K. Wilson, J.L. Proctor, M.C. Hegg, Limitations of haemozoin-based diagnosis of plasmodium falciparum using dark-field microscopy. Malar. J. 13(1), 147 (2014)
A.R. Bharti, S.L. Letendre, K.P. Patra, J.M. Vinetz, D.M. Smith, Malaria diagnosis by a polymerase chain reaction–based assay using a pooling strategy. Am. J. Trop. Med. Hyg. 81(5), 754–757 (2009)
M. Bilal, M. Saleem, S.T. Amanat, H.A. Shakoor, R. Rashid, Mah mood A, Ahmed M optical diagnosis of malaria infection in human plasma using Raman spectroscopy. J. Biomed. Opt. 20(1), 017002 (2015)
D. Cojoc, S. Finaurini, P. Livshits, E. Gur, A. Shapira, V. Mico, Zalevsky Z toward fast malaria detection by secondary speckle sensing microscopy. Biomed. Opt. Express. 3(5), 991–1005 (2012)
M. Sanjay, N.K. Singh, L. Ngashangva, Goswami P A smartphone-based fiber-optic aptasensor for label-free detection of plasmodium falciparum glutamate dehydrogenase. Anal. Methods. 12(10), 1333–1341 (2020)
N. Sabri, S.A. Aljunid, M.S. Salim, R.B. Ahmad, R. Kamaruddin, Toward optical sensors: review and applications. IOP Publishing. 423(1), 012064 (2013)
A.M. Pinto, M. Lopez-Amo, Photonic crystal fibers for sensing applications. J Sens. (2012:2012)
H. Wang, X. Yan, S. Li, G. An, X. Zhang, High sensitivity refractive index sensor based on dual-core photonic crystal fiber with hexagonal lattice. Sensors. 16(10), 1655 (2016)
B.M.H. Kumar, P.C. Srikanth, A.M. Vaibhav, A novel computation method for detection of malaria in RBC using photonic biosensor. Int. J. Inf. Tecnol. 13, 2053–2058 (2021). https://doi.org/10.1007/s41870-021-00782-z
M.A. Mollah, M. Yousufali, I.M. Ankan, M.M. Rahman, H. Sarker, Chakrabarti K twin core photonic crystal fiber refractive index sensor for early detection of blood cancer. Sens. Bio-Sensing Res. 29, 100344 (2020)
M. De, A.K. Pathak, V.K. Singh, Single channel photonic crystal fiber-based high sensitive petrol adulteration detection sensor. Optik. 183, 539–546 (2019)
R.B. Gowda, K. Saara, P. Sharan, Detection of oral cancerous cells using highly sensitive one-dimensional distributed Bragg s Reflector Fabry Perot Microcavity, Optik. 244, no. June, p. 167599, (2021), https://doi.org/10.1016/j.ijleo.2021.167599
A.M. Upadhyaya, C. Maneesh, Srivastava, Preeta Sharan, and Sandip Kumar roy. Silicon nanostructure-based photonic MEMS sensor for biosensing application. J. Nanophotonics. 15(2), 026001–026001 (2021)
R.K. Pathak, S. Mishra, S.K. Roy, P. Sharan, A two-stage detection methodology for thyroid cancer using photonic crystal: logistic regression and artificial neural networks, Optik, 321,2025,172148, ISSN 0030–4026 (2024).https://doi.org/10.1016/j.ijleo.2024.172148
V.L. Nandhini, K. Suresh Babu, S.K. Roy, P. Sharan, Multichannel biosensor for skin type analysis, in Advances in Machine Learning and Computational Intelligence. Algorithms for Intelligent Systems, ed. by S. Patnaik, X.S. Yang, I. Sethi (Springer, Singapore) (2021). https://doi.org/10.1007/978-981-15-5243-4_57
R.O. McAlister, D.M. Gordon, Schizont-Infected cell enrichment in rodent malaria. J. Parasitol. 62(5), 664–669 (1976). https://doi.org/10.2307/3278934
S.C. Sharan, H.K. Dhruva, T. Mary Anitha, N. Roy, P. Sharan, R. Madhwesha Moudgalya, FBG Sensor Design and Analysis for Early Detection of Cancer, 2024 11th International Conference on Computing for Sustainable Global Development (INDIACom), New Delhi, India, pp. 843–849 (2024). https://doi.org/10.23919/INDIACom61295.2024.10498873
F.K. Musasia, I.N. Nkumama, R. Frank et al., Phagocytosis of Plasmodium falciparum ring-stage parasites predicts protection against malaria. Nat. Commun. 13, 4098 (2022). https://doi.org/10.1038/s41467-022-31640-6
R. Zhang, R. Suwanarusk, B. Malleret, B.M. Cooke, F. Nosten, Y.L. Lau, M. Dao, C.T. Lim, L. Renia, K.S. Tan, B. Russell, A basis for rapid clearance of Circulating Ring-Stage malaria parasites by the spiroindolone KAE609. J. Infect. Dis. 213(1), 100–104. Epub 2015 Jul 1. PMID: 26136472; PMCID: PMC4676544 (2016). https://doi.org/10.1093/infdis/jiv358.)
R.B. Gowda, H.N. Gayathri, R. Mathias, H.C. Shreya, P.N. Veena, R.K. Raju, Detection of intraerythrocytic stages of malaria parasite using one-dimensional Bragg mirror optical sensor, J. Opt., no. 0123456789 (2024). https://doi.org/10.1007/s12596-024-01669-5
L. Rosado, Da J.M.C. Costa, D. Elias, J.S. Cardoso, Mobile-Based Analysis of Malaria-Infected Thin Blood Smears: Automated Species and Life Cycle Stage Determination. Sensors 2017, 17, 2167 (2017). https://doi.org/10.3390/s17102167
A.K. Dasanna, C. Lansche, M. Lanzer, U.S. Schwarz, Rolling Adhesion of Schizont Stage Malaria-Infected Red Blood Cells in Shear Flow. Biophys J. 112(9):1908–1919, PMID: 28494961; PMCID: PMC5425411 (2017). https://doi.org/10.1016/j.bpj.2017.04.001
T. Li, Y. Tan, Z. Zhou et al., Study on the non-contact FBG vibration sensor and its application. Photonic Sens. 5, 128–136 (2015). https://doi.org/10.1007/s13320-015-0220-9
R.B. Gowda, P. Sharan, K. Saara, M. Braim, A.N. Alodhayb, An FBG-based optical pressure sensor for the measurement of radial artery pulse pressure, J. Biophotonics. 17(7), March, pp. 1–10 (2024). https://doi.org/10.1002/jbio.202400083
W. Huang, W. Zhang, Y. Luo, L. Li, W. Liu, F. Li, Broadband FBG resonator seismometer: principle, key technique, self-noise, and seismic response analysis. Opt. Express. 26, 10705–10715 (2018)
M.M.R.C.S.B. Allil, B. A., and, F.V.B. de Nazar, ‘A Guide to Fiber Bragg Grating Sensors’, Current Trends in Short- and Long-period Fiber Gratings. InTech. May 15 (2013). https://doi.org/10.5772/54682
L. Vincent Raj, N. Srinivasan, Preeta, Sharan, M.U. Anup. Modelling and Simulation of Refractive Index-Based FBG Sensor for the Detection of Blood, Adrenal, Cervical, Breast and Skin Cancers. Bulletin of Scientific Research 6 (2):1–12 (2024). https://doi.org/10.54392/bsr2421. (2024)
M.A. Jabin, K. Ahmed, B.K. RanaMJ,Paul, M. Islam, D. Vigneswaran, Uddin MS surface plasmon resonance based titanium coated biosensor for cancer cell detection. IEEE Photonics J. 11(4), 1–0 (2019)
Comments (0)