Optical diagnostic imaging and therapy for thyroid cancer
Tài liệu tham khảo
Qiu, 2021, Cancer incidence, mortality, and burden in China: a time-trend analysis and comparison with the United States and United Kingdom based on the global epidemiological data released in 2020, Cancer Commun., 41, 1037, 10.1002/cac2.12197
Kilfoy, 2009, International patterns and trends in thyroid cancer incidence, 1973–2002, Cancer Cause, Control, 20, 525
Davies, 2014, Current thyroid cancer trends in the United States, JAMA Otolaryngol. Head Neck Surgery, 140, 317, 10.1001/jamaoto.2014.1
Vaccarella, 2016, Worldwide thyroid-cancer epidemic? The increasing impact of overdiagnosis, N. Engl. J. Med., 375, 614, 10.1056/NEJMp1604412
Cooper, 2009, Revised American thyroid association management guidelines for patients with thyroid nodules and differentiated thyroid cancer, Thyroid, 19, 1167, 10.1089/thy.2009.0110
Haugen, 2016, 2015 American thyroid association management guidelines for adult patients with thyroid nodules and differentiated thyroid cancer: the American thyroid association guidelines task force on thyroid nodules and differentiated thyroid cancer, Thyroid, 26, 1, 10.1089/thy.2015.0020
Filetti, 2019, Thyroid cancer: ESMO Clinical Practice Guidelines for diagnosis, treatment and follow-up, Ann. Oncol., 30, 1856, 10.1093/annonc/mdz400
Lim, 2017, Trends in thyroid cancer incidence and mortality in the United States, 1974-2013, JAMA, 317, 1338, 10.1001/jama.2017.2719
Prasongsook, 2017, Survival in response to multimodal therapy in anaplastic thyroid cancer, J. Clin. Endocrinol. Metab., 102, 4506, 10.1210/jc.2017-01180
Bible, 2021, 2021 American thyroid association guidelines for management of patients with anaplastic thyroid cancer, Thyroid, 31, 337, 10.1089/thy.2020.0944
Chahardahmasumi, 2019, Assessment of the early and late complication after thyroidectomy, Adv. Biomed. Res., 8, 14, 10.4103/abr.abr_3_19
Niemz, 2007, Laser-tissue interactions: fundamentals and applications, Adv. Biol. Med. Phys., 36, 216
Fatima, 2021, Quantum dots: synthesis, antibody conjugation, and HER2-receptor targeting for breast cancer therapy, J. Funct. Biomater., 12, 75, 10.3390/jfb12040075
Yu, 2020, Label-free visualization of early cancer hepatic micrometastasis and intraoperative image-guided surgery by photoacoustic imaging, J. Nucl. Med., 61, 1079, 10.2967/jnumed.119.233155
Barani, 2021, Nanomaterials in the management of gram-negative bacterial infections, Nanomaterials, 11, 2535, 10.3390/nano11102535
Barani, 2021, Theranostic advances of bionanomaterials against gestational diabetes mellitus: a preliminary review, J. Funct. Biomater., 12, 54, 10.3390/jfb12040054
Rizwan, 2022, MXene-based electrochemical and biosensing platforms to detect toxic elements and pesticides pollutants from environmental matrices, Chemosphere, 291
Najeeb, 2022, Surfactant stabilized gold nanomaterials for environmental sensing applications – a review, Environ. Res., 208, 10.1016/j.envres.2021.112644
Batool, 2021, Bismuth-based heterojunction nanocomposites for photocatalysis and heavy metal detection applications, Nano-Struct. Nano-Objects, 27, 10.1016/j.nanoso.2021.100762
Prasad, 2005, Introduction to biophotonics, J. Biomed. Opt., 10, 10.1117/1.1931672
Sargazi, 2022, Fluorescent-based nanosensors for selective detection of a wide range of biological macromolecules: a comprehensive review, Int. J. Biol. Macromol., 206, 115, 10.1016/j.ijbiomac.2022.02.137
Yang, 2021, Surgical navigation for malignancies guided by near-infrared-II fluorescence imaging, Small Methods, 5, 10.1002/smtd.202001066
Feng, 2021, Perfecting and extending the near-infrared imaging window, Light Sci. Appl., 10, 197, 10.1038/s41377-021-00628-0
Luo, 2021, High-specificity in vivo tumor imaging using bioorthogonal NIR-IIb nanoparticles, Adv. Mater., 33, 10.1002/adma.202102950
Cheng, 2017, Synthesis, characterization, and biomedical applications of a targeted dual-modal near-infrared-II fluorescence and photoacoustic imaging nanoprobe, ACS Nano, 11, 12276, 10.1021/acsnano.7b05966
Chen, 2017, Novel iodinated gold nanoclusters for precise diagnosis of thyroid cancer, Nanoscale, 9, 2219, 10.1039/C6NR07656D
Fanfone, 2020, Molecular imaging of galectin-1 expression as a biomarker of papillary thyroid cancer by using peptide-functionalized imaging probes, Biology, 9, 53, 10.3390/biology9030053
Cortese, 2021, The LUCA device: a multi-modal platform combining diffuse optics and ultrasound imaging for thyroid cancer screening, Biomed. Opt Express, 12, 3392, 10.1364/BOE.416561
Weekley, 2013, Which form is that? The importance of selenium speciation and metabolism in the prevention and treatment of disease, Chem. Soc. Rev., 42, 8870, 10.1039/c3cs60272a
Brown, 2001, Selenium, selenoproteins and human health: a review, Publ. Health Nutr., 4, 593, 10.1079/PHN2001143
Kryukov, 2003, Characterization of mammalian selenoproteomes, Science, 300, 1439, 10.1126/science.1083516
Luo, 2020, Detection of selenocysteine with a ratiometric near-infrared fluorescent probe in cells and in mice thyroid diseases model, Anal. Chem., 92, 1589, 10.1021/acs.analchem.9b04860
Laraib, 2022, Nanotechnology-based approaches for effective detection of tumor markers: a comprehensive state-of-the-art review, Int. J. Biol. Macromol., 195, 356, 10.1016/j.ijbiomac.2021.12.052
Mukhtar, 2021, Application of nanotechnology for sensitive detection of low-abundance single-nucleotide variations in genomic DNA: a review, Nanomaterials, 11, 1384, 10.3390/nano11061384
Zhou, 2010, Ex vivo imaging of human thyroid pathology using integrated optical coherence tomography and optical coherence microscopy, J. Biomed. Opt., 15, 10.1117/1.3306696
Lee, 2016, Preliminary study of optical coherence tomography imaging to identify microscopic extrathyroidal extension in patients with papillary thyroid carcinoma, Laser Surg. Med., 48, 371, 10.1002/lsm.22466
Yang, 2019, Rapid head and neck tissue identification in thyroid and parathyroid surgery using optical coherence tomography, Head Neck, 41, 4171, 10.1002/hed.25972
Karlas, 2021, Optoacoustic imaging in endocrinology and metabolism, Nat. Rev. Endocrinol., 17, 323, 10.1038/s41574-021-00482-5
Lv, 2021, Quantitative functional evaluation of liver fibrosis in mice with dynamic contrast-enhanced photoacoustic imaging, Radiology, 300, 89, 10.1148/radiol.2021204134
Dima, 2016, In-vivo handheld optoacoustic tomography of the human thyroid, Photoacoustics, 4, 65, 10.1016/j.pacs.2016.05.003
Dogra, 2014, Preliminary results of ex vivo multispectral photoacoustic imaging in the management of thyroid cancer, Am. J. Roentgenol., 202, W552, 10.2214/AJR.13.11433
Yang, 2017, Photoacoustic/ultrasound dual imaging of human thyroid cancers: an initial clinical study, Biomed. Opt Express, 8, 3449, 10.1364/BOE.8.003449
Roll, 2019, Multispectral optoacoustic tomography of benign and malignant thyroid disorders: a pilot study, J. Nucl. Med., 60, 1461, 10.2967/jnumed.118.222174
Kim, 2020, Towards clinical photoacoustic and ultrasound imaging: probe improvement and real-time graphical user interface, Exp. Biol. Med., 245, 321, 10.1177/1535370219889968
Zouaoui, 2017, Chromophore decomposition in multispectral time-resolved diffuse optical tomography, Biomed. Opt Express, 8, 4772, 10.1364/BOE.8.004772
Shimokawa, 2016, Diffuse optical tomography using multi-directional sources and detectors, Biomed. Opt Express, 7, 2623, 10.1364/BOE.7.002623
Mimura, 2021, Imaging the human thyroid using three-dimensional diffuse optical tomography: a preliminary study, Appl. Sci., 11, 1670, 10.3390/app11041670
Fujii, 2017, Modeling of light propagation in the human neck for diagnoses of thyroid cancers by diffuse optical tomography, Int. J. Numer. Meth. Bio., 33
Biswas, 2014, Carboplatin synergistically triggers the efficacy of photodynamic therapy via caspase 3-, 8-, and 12-dependent pathways in human anaplastic thyroid cancer cells, Laser Med. Sci., 29, 995, 10.1007/s10103-013-1452-9
Begum, 2004, BRAF mutations in anaplastic thyroid carcinoma: implications for tumor origin, diagnosis and treatment, Mod. Pathol., 17, 1359, 10.1038/modpathol.3800198
Li, 2020, Clinical development and potential of photothermal and photodynamic therapies for cancer, Nat. Rev. Clin. Oncol., 17, 657, 10.1038/s41571-020-0410-2
Wang, 2020, A sequential targeting nanoplatform for anaplastic thyroid carcinoma theranostics, Acta Biomater., 102, 367, 10.1016/j.actbio.2019.11.043
Huang, 2021, Tailoring morphologies of mesoporous polydopamine nanoparticles to deliver high-loading radioiodine for anaplastic thyroid carcinoma imaging and therapy, Nanoscale, 13, 15021, 10.1039/D1NR02892H
Zhang, 2022, Evaluating the therapeutic efficacy of radiolabeled BSA@CuS nanoparticle-induced radio-photothermal therapy against anaplastic thyroid cancer, IUBMB Life, 74, 433, 10.1002/iub.2601
Xing, 2022, Boron dipyrromethene-based phototheranostics for near infrared fluorescent and photoacoustic imaging-guided synchronous photodynamic and photothermal therapy of cancer, J. Phys. Chem. Lett., 13, 7939, 10.1021/acs.jpclett.2c02122
Xu, 2022, Charge reversal polypyrrole nanocomplex-mediated gene delivery and photothermal therapy for effectively treating papillary thyroid cancer and inhibiting lymphatic metastasis, ACS Appl. Mater. Interfaces, 14, 14072, 10.1021/acsami.1c25179
Amaral, 2021, Gold-based nanoplataform for the treatment of anaplastic thyroid carcinoma: a step forward, Cancers, 13, 1242, 10.3390/cancers13061242
Yu, 2019, Novel design of NIR-triggered plasmonic nanodots capped mesoporous silica nanoparticles loaded with natural capsaicin to inhibition of metastasis of human papillary thyroid carcinoma B-CPAP cells in thyroid cancer chemo-photothermal therapy, J. Photochem. Photobiol. B Biol., 197, 10.1016/j.jphotobiol.2019.111534
Tan, 2022, NIR-II aggregation-induced emission luminogens for tumor phototheranostics, Biosensors, 12, 46, 10.3390/bios12010046
Zhao, 2018, Local generation of hydrogen for enhanced photothermal therapy, Nat. Commun., 9, 4241, 10.1038/s41467-018-06630-2
Zhou, 2019, Porphyrin–palladium hydride MOF nanoparticles for tumor-targeting photoacoustic imaging-guided hydrogenothermal cancer therapy, Nanoscale Horizons, 4, 1185, 10.1039/C9NH00021F
Fedyniak, 2005, Photodynamic therapy for cancer, Posit. Health, 50, 589
Yu, 2015, A near-infrared triggered nanophotosensitizer inducing domino effect on mitochondrial reactive oxygen species burst for cancer therapy, ACS Nano, 9, 11064, 10.1021/acsnano.5b04501
Sheng, 2018, Perfluorooctyl bromide & indocyanine green co-loaded nanoliposomes for enhanced multimodal imaging-guided phototherapy, Biomaterials, 1
Song, 2016, Ultrasound triggered tumor oxygenation with oxygen-shuttle nanoperfluorocarbon to overcome hypoxia-associated resistance in cancer therapies, Nano Lett., 16, 6145, 10.1021/acs.nanolett.6b02365
Phua, 2019, Catalase integrated hyaluronic acid as nanocarriers for enhanced photodynamic therapy in solid tumor, ACS Nano, 13, 10.1021/acsnano.9b01087
Chen, 2015, H2O2 activatable and O2-evolving nanoparticles for highly efficient and selective photodynamic therapy against hypoxic tumor cells, J. Am. Chem. Soc., 137, 1539, 10.1021/ja511420n
Muhanna, 2020, Photodynamic therapy enables tumor-specific ablation in preclinical models of thyroid cancer, Endocr. Relat. Cancer, 27, 41, 10.1530/ERC-19-0258
Chatterjee, 2018, Sulforaphene enhances the efficacy of photodynamic therapy in anaplastic thyroid cancer through ras/RAF/MEK/ERK pathway suppression, J. Photochem. Photobiol. B Biol., 179, 46, 10.1016/j.jphotobiol.2017.12.013
Biswas, 2015, Deregulation of EGFR/PI3K and activation of PTEN by photodynamic therapy combined with carboplatin in human anaplastic thyroid cancer cells and xenograft tumors in nude mice, J. Photochem. Photobiol., B, 148, 118, 10.1016/j.jphotobiol.2015.03.024
Kim, 2018, Hypericin-assisted photodynamic therapy against anaplastic thyroid cancer, Photodiagn. Photodyn., 24, 15, 10.1016/j.pdpdt.2018.08.008
Yan, 2021, Donor/π-Bridge manipulation for constructing a stable NIR-II aggregation-induced emission luminogen with balanced phototheranostic performance, Angew. Chem., 60, 26769, 10.1002/anie.202111767
Dai, 2021, NIR-II excitation phototheranostic nanomedicine for fluorescence/photoacoustic tumor imaging and targeted photothermal-photonic thermodynamic therapy, Small, 17, 10.1002/smll.202102527
Wang, 2020, NIR-driven water splitting H 2 production nanoplatform for H 2 -mediated cascade-amplifying synergetic cancer therapy, ACS Appl. Mater. Interfaces, 12, 23677, 10.1021/acsami.0c03852
Schmidbauer, 2017, Differentiated thyroid cancer—treatment: state of the art, Int. J. Mol. Sci., 18, 1292, 10.3390/ijms18061292
Sherman, 2011, Concurrent doxorubicin and radiotherapy for anaplastic thyroid cancer: a critical re-evaluation including uniform pathologic review, Radiother. Oncol., 101, 425, 10.1016/j.radonc.2011.09.004
Zhou, 2015, Single agent nanoparticle for radiotherapy and radio-photothermal therapy in anaplastic thyroid cancer, Biomaterials, 57, 41, 10.1016/j.biomaterials.2015.04.013
Smallridge, 2012, American Thyroid Association guidelines for management of patients with anaplastic thyroid cancer, Thyroid : official journal of the American Thyroid Association., 22, 1104, 10.1089/thy.2012.0302
Yu, 2020, NIR triggered PLGA coated Au-TiO(2) core loaded CPT-11 nanoparticles for human, Drug Deliv., 27, 855, 10.1080/10717544.2020.1775723
Arshad, 2021, Novel perspectives towards RNA-based nano-theranostic approaches for cancer management, Nanomaterials, 11, 3330, 10.3390/nano11123330
Liu, 2016, Theranostic near-infrared fluorescent nanoplatform for imaging and systemic siRNA delivery to metastatic anaplastic thyroid cancer, Proc. Natl. Acad. Sci. USA, 113, 7750, 10.1073/pnas.1605841113
Sargazi, 2022, Opportunities and challenges of using high-sensitivity nanobiosensors to detect long noncoding RNAs: a preliminary review, Int. J. Biol. Macromol., 205, 304, 10.1016/j.ijbiomac.2022.02.082
Wang, 2018, Optical molecular imaging for tumor detection and image-guided surgery, Biomaterials, 157, 62, 10.1016/j.biomaterials.2017.12.002
Smith, 2009, Bioimaging: second window for in vivo imaging, Nat. Nanotechnol., 4, 710, 10.1038/nnano.2009.326
Kenry, 2017, Biological imaging: recent advances of optical imaging in the second near-infrared window (adv. Mater. 47/2018), Adv. Mater., 30, 1870361, 10.1002/adma.201870361
Namikawa, 2015, Clinical applications of 5-aminolevulinic acid-mediated fluorescence for gastric cancer, World J. Gastroenterol., 21, 8769, 10.3748/wjg.v21.i29.8769
Matsui, 2010, Real-time, near-infrared, fluorescence-guided identification of the ureters using methylene blue, Surgery, 148, 78, 10.1016/j.surg.2009.12.003
van Manen, 2018, A practical guide for the use of indocyanine green and methylene blue in fluorescence-guided abdominal surgery, J. Surg. Oncol., 118, 283, 10.1002/jso.25105
Büther, 2012, Assessment of endothelin-A receptor expression in subcutaneous and orthotopic thyroid carcinoma xenografts in vivo employing optical imaging methods, Endocrinology, 153, 2907, 10.1210/en.2011-2017
Süslü, 2022, Role of indocyanine green combined with radiotracer-Technetium 99 m in neck surgery for primary and recurrent head and neck cancer: preliminary results of a tertiary cancer center, Eur. Arch. Oto-Rhino-Laryngol., 279, 1549, 10.1007/s00405-021-06931-1
Jung, 2014, Surgical targeting of recurrent thyroid cancer using a novel mixture of 99m-technetium macroaggregated albumin and indocyanine green, Surg. Innovat., 21, 622, 10.1177/1553350614524840
Wei, 2020, Tissue factor-targeted ImmunoPET imaging and radioimmunotherapy of anaplastic thyroid cancer, Adv. Sci., 7, 10.1002/advs.201903595
Erickson-Bhatt, 2018, Intraoperative optical coherence tomography of the human thyroid: feasibility for surgical assessment, Transl. Res., 195, 13, 10.1016/j.trsl.2017.12.001
Conti De Freitas, 2013, Optical coherence tomography imaging during thyroid and parathyroid surgery: a novel system of tissue identification and differentiation to obviate tissue resection and frozen section, Head Neck, 36
Zhang, 2017, Beyond the margins: real-time detection of cancer using targeted fluorophores, Nat. Rev. Clin. Oncol., 14, 347, 10.1038/nrclinonc.2016.212
Jonker, 2022, Intraoperative MET-receptor targeted fluorescent imaging and spectroscopy for lymph node detection in papillary thyroid cancer: novel diagnostic tools for more selective central lymph node compartment dissection, Eur. J. Nucl. Med. Mol., I
Zhang, 2019, Clinical feasibility of imaging with indocyanine green combined with carbon nanoparticles for sentinel lymph node identification in papillary thyroid microcarcinoma, Medicine, 98, 10.1097/MD.0000000000016935
McMullen, 2017, Complications of bilateral neck dissection in thyroid cancer from a single high-volume center, JAMA Otolaryngol. Head Neck Surgery, 143, 376, 10.1001/jamaoto.2016.3670
Demarchi, 2021, Fluorescence image-guided surgery for thyroid cancer: utility for preventing hypoparathyroidism, Cancers, 13, 3792, 10.3390/cancers13153792
Rudin, 2019, Impact of fluorescence and autofluorescence on surgical strategy in benign and malignant neck endocrine diseases, Best Pract. Res. Cl. En., 33, 10.1016/j.beem.2019.101311
Sommerey, 2015, Intraoperative optical coherence tomography imaging to identify parathyroid glands, Surg. Endosc., 29, 2698, 10.1007/s00464-014-3992-x
Ladurner, 2013, Optical coherence tomography as a method to identify parathyroid glands, Laser Surg. Med., 45, 654, 10.1002/lsm.22195
Pantanowitz, 2004, High-resolution imaging of the thyroid gland using optical coherence tomography, Head Neck, 26, 425, 10.1002/hed.10392
van den Bos, 2019, Feasibility of indocyanine green fluorescence imaging for intraoperative identification of parathyroid glands during thyroid surgery, Head Neck, 41, 340, 10.1002/hed.25451
Kim, 2021, Near-infrared autofluorescence imaging may reduce temporary hypoparathyroidism in patients undergoing total thyroidectomy and central neck dissection, Thyroid, 31, 1400, 10.1089/thy.2021.0056
Papadia, 2015, Indocyanine green fluorescence imaging in the surgical management of an iatrogenic lymphatic fistula: description of a surgical technique, J. Minim. Invasive Gynecol., 22, 1304, 10.1016/j.jmig.2015.06.014
Matsutani, 2014, Transabdominal approach for chylorrhea after esophagectomy by using fluorescence navigation with indocyanine green, Case Reports in Surgery, 2014, 1, 10.1155/2014/464017
Kamiya, 2009, Intraoperative indocyanine green fluorescence lymphography, a novel imaging technique to detect a chyle fistula after an esophagectomy: report of a case, Surg. Today, 39, 421, 10.1007/s00595-008-3852-1
Chakedis, 2018, Identification of the thoracic duct using indocyanine green during cervical lymphadenectomy, Ann. Surg Oncol., 25, 3711, 10.1245/s10434-018-6690-4
Li, 2021, Minimally invasive photothermal ablation assisted by laparoscopy as an effective preoperative neoadjuvant treatment for orthotopic hepatocellular carcinoma, Cancer Lett., 496, 169, 10.1016/j.canlet.2020.09.024
Kobayashi, 2019, Near-infrared photoimmunotherapy of cancer, Accounts Chem. Res., 52, 2332, 10.1021/acs.accounts.9b00273
Nakano, 2021, Progress of molecular targeted therapy for head and neck cancer in clinical aspects, Mol. Biomed., 2, 15, 10.1186/s43556-021-00032-5