Intravesical Contrast-Enhanced MRI: A Potential Tool for Bladder Cancer Surveillance and Staging
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R. Dhir | J. Maranchie | C. Moon | P. Tyagi | Anirban Ganguly | T. Tarin | Kang Jun Cho | Biatta Sholosh | M. Connell | B. Sholosh
[1] J. Maranchie,et al. MP14-03 VIRTUAL MONITORING OF BLADDER CANCER PROGRESSION IN MICE WITH INTRAVESICAL CONTRAST ENHANCED MAGNETIC RESONANCE IMAGING (ICE-MRI) , 2023, Journal of Urology.
[2] P. Gontero*,et al. A Restaging Transurethral Resection of the Bladder Is Always Necessary for High-grade T1 Non-muscle-invasive Bladder Cancer: Con. , 2023, European urology focus.
[3] S. Shariat,et al. Sequential intravesical gemcitabine and docetaxel therapy in patients with nonmuscle invasive bladder cancer: a systematic review and meta-analysis , 2022, Current opinion in urology.
[4] F. Crocetto,et al. Micro-Ultrasound in the Diagnosis and Staging of Prostate and Bladder Cancer: A Comprehensive Review , 2022, Medicina.
[5] L. Foley,et al. Functional and histologic imaging of urinary bladder wall after exposure to psychological stress and protamine sulfate , 2021, Scientific Reports.
[6] Y. Hsu,et al. Possible Association between Bladder Wall Morphological Changes on Computed Tomography and Bladder-Centered Interstitial Cystitis/Bladder Pain Syndrome , 2021, Biomedicines.
[7] J. Maranchie,et al. MP22-01 HIGH RESOLUTION 3D T1-MAPPING OF PIG BLADDER WALL BY INTRAVESICAL CONTRAST ENHANCED MRI AT 3T , 2021 .
[8] J. Maranchie,et al. PD01-05 PROBING THE BLADDER WALL DIFFUSION OF INSTILLED GADOBUTROL BY MRI , 2021 .
[9] L. Foley,et al. PD11-10 PROSTATE-SPECIFIC DELETION OF Cdh1 IN MICE MIMICS PROSTATIC PERFUSION OF BENIGN PROSTATIC HYPERPLASIA (BPH) PATIENTS , 2021 .
[10] Y. Hsu,et al. Difference in electron microscopic findings among interstitial cystitis/bladder pain syndrome with distinct clinical and cystoscopic characteristics , 2021, Scientific Reports.
[11] Xin-Xin Ge,et al. Effectiveness of contrast-enhanced ultrasound for detecting the staging and grading of bladder cancer: a systematic review and meta-analysis. , 2021, Medical ultrasonography.
[12] J. Maranchie,et al. Virtual Measurements of Paracellular Permeability and Chronic Inflammation Via Color Coded Pixel-wise T1 Mapping. , 2020, American journal of physiology. Renal physiology.
[13] M. Detmar,et al. Characterization of tumor blood vasculature expression of human invasive bladder cancer by laser capture microdissection and transcriptional profiling. , 2020, The American journal of pathology.
[14] W. Krajewski,et al. The Impact of Restaging Transurethral Resection of Bladder Tumour on Survival Parameters in T1 Non-Muscle Invasive Bladder Cancer - Systematic Review and Meta-analysis. , 2020, Journal of endourology.
[15] Hardeep Singh,et al. Imaging activity possibly signalling missed diagnostic opportunities in bladder and kidney cancer: A longitudinal data-linkage study using primary care electronic health records , 2020, Cancer epidemiology.
[16] E. Sala,et al. MRI of Bladder Cancer: Local and Nodal Staging. , 2020, Journal of magnetic resonance imaging : JMRI.
[17] G. Guazzoni,et al. Assessing the Feasibility and Accuracy of High-resolution Microultrasound Imaging for Bladder Cancer Detection and Staging. , 2020, European urology.
[18] I. Akushevich,et al. Longitudinal patterns of cost and utilization of medicare beneficiaries with bladder cancer. , 2019, Urologic oncology.
[19] Rosewinter Kodzwa,et al. ACR Manual on Contrast Media: 2018 Updates. , 2019, Radiologic technology.
[20] L. Appleman,et al. Rate and Determinants of Completing Neoadjuvant Chemotherapy in Medicare Beneficiaries With Bladder Cancer: A SEER-Medicare Analysis. , 2019, Urology.
[21] F. Kay,et al. Hepatic and cardiac and iron overload detected by T2* magnetic resonance (MRI) in patients with myelodisplastic syndrome: A cross-sectional study. , 2019, Leukemia research.
[22] C. Moon,et al. Recent advances in imaging and understanding interstitial cystitis , 2018, F1000Research.
[23] S. Gambhir,et al. Surface-Enhanced Raman Scattering Nanoparticles for Multiplexed Imaging of Bladder Cancer Tissue Permeability and Molecular Phenotype , 2018, ACS nano.
[24] R. Huddart,et al. Multiparametric Magnetic Resonance Imaging for Bladder Cancer: Development of VI-RADS (Vesical Imaging-Reporting And Data System). , 2018, European urology.
[25] Haitao Niu,et al. Bacillus Calmette–Guérin and anti-PD-L1 combination therapy boosts immune response against bladder cancer , 2018, OncoTargets and therapy.
[26] C. Moon,et al. Novel contrast mixture achieves contrast resolution of human bladder wall suitable for T1 mapping: applications in interstitial cystitis and beyond , 2018, International Urology and Nephrology.
[27] Xiaoke Wang,et al. Relaxivity of Ferumoxytol at 1.5 T and 3.0 T , 2017, Investigative radiology.
[28] L. Foley,et al. Novel contrast mixture improves bladder wall contrast for visualizing bladder injury. , 2017, American journal of physiology. Renal physiology.
[29] R. Semelka,et al. Gadolinium toxicity and treatment. , 2016, Magnetic resonance imaging.
[30] E. Lerut,et al. Evans blue-mediated white-light detection of non-muscle-invasive bladder cancer: A preclinical feasibility and safety study using a rat bladder urothelial cell carcinoma model , 2016, Molecular and clinical oncology.
[31] Ben R Dickie,et al. Improved accuracy and precision of tracer kinetic parameters by joint fitting to variable flip angle and dynamic contrast enhanced MRI data , 2016, Magnetic resonance in medicine.
[32] D. Engelman,et al. Targeted imaging of urothelium carcinoma in human bladders by an ICG pHLIP peptide ex vivo , 2016, Proceedings of the National Academy of Sciences.
[33] A. Hemal,et al. Molecular Targeted Fluorescence-Guided Intraoperative Imaging of Bladder Cancer Nodal Drainage Using Indocyanine Green During Radical and Partial Cystectomy , 2016, Current Urology Reports.
[34] J. Finn,et al. Cardiovascular MRI with ferumoxytol. , 2016, Clinical radiology.
[35] D. Hippe,et al. Macrocyclic and Other Non–Group 1 Gadolinium Contrast Agents Deposit Low Levels of Gadolinium in Brain and Bone Tissue: Preliminary Results From 9 Patients With Normal Renal Function , 2016, Investigative radiology.
[36] Kai Tobias Block,et al. Performance of simultaneous high temporal resolution quantitative perfusion imaging of bladder tumors and conventional multi-phase urography using a novel free-breathing continuously acquired radial compressed-sensing MRI sequence. , 2016, Magnetic resonance imaging.
[37] F. Faeghi,et al. Role of Dynamic Contrast-Enhanced Magnetic Resonance Imaging in Staging of Bladder Cancer. , 2016, Journal of clinical and diagnostic research : JCDR.
[38] D. Minardi,et al. Non-muscle invasive high grade urothelial carcinoma of the bladder. Which factors can influence understaging at the time of radical cystectomy? , 2016, Archivio italiano di urologia, andrologia : organo ufficiale [di] Societa italiana di ecografia urologica e nefrologica.
[39] H. Poppel,et al. Biodistribution of Evans blue in an orthotopic AY‐27 rat bladder urothelial cell carcinoma model: implication for the improved diagnosis of non‐muscle‐invasive bladder cancer (NMIBC) using dye‐guided white‐light cystoscopy , 2015, BJU international.
[40] J. Donnellan,et al. Delayed contrast-enhanced MRI to localize Botox after cystoscopic intravesical injection , 2015, International Urology and Nephrology.
[41] John N Morelli,et al. T1 Relaxivities of Gadolinium-Based Magnetic Resonance Contrast Agents in Human Whole Blood at 1.5, 3, and 7 T , 2015, Investigative radiology.
[42] Sanjiv S. Gambhir,et al. Endoscopic molecular imaging of human bladder cancer using a CD47 antibody , 2014, Science Translational Medicine.
[43] Tuan Dinh,et al. The Health Economics of Bladder Cancer: An Updated Review of the Published Literature , 2014, PharmacoEconomics.
[44] M. Meng,et al. Endoscopic Gold Fiducial Marker Placement into the Bladder Wall to Optimize Radiotherapy Targeting for Bladder-Preserving Management of Muscle-Invasive Bladder Cancer: Feasibility and Initial Outcomes , 2014, PloS one.
[45] Jun Liu,et al. The effects of changing water content, relaxation times, and tissue contrast on tissue segmentation and measures of cortical anatomy in MR images. , 2013, Magnetic resonance imaging.
[46] G. Apodaca,et al. Bladder filling and voiding affect umbrella cell tight junction organization and function. , 2013, American journal of physiology. Renal physiology.
[47] Yu Fan,et al. Clinical value of T2-weighted imaging combined with diffusion-weighted imaging in preoperative T staging of urinary bladder cancer: a large-scale, multiobserver prospective study on 3.0-T MRI. , 2013, Academic radiology.
[48] E. Stojovska-Jovanovska,et al. Computed tomography or magnetic resonance imaging - our experiences in determining preoperative TNM staging of bladder cancer. , 2013, Prilozi.
[49] T. Miyati,et al. Hemodynamic analysis of bladder tumors using T1-dynamic contrast-enhanced fast spin-echo MRI. , 2012, European journal of radiology.
[50] S. Saadat,et al. Risk factors for disconcordance between pre and post radical cystectomy stages. , 2011, Urology journal.
[51] R. Reilly,et al. Gadolinium and Nephrogenic Systemic Fibrosis: Have We Overreacted? , 2011, Seminars in dialysis.
[52] Klaas Nicolay,et al. Three‐dimensional T1 mapping of the mouse heart using variable flip angle steady‐state MR imaging , 2011, NMR in biomedicine.
[53] Joseph C Liao,et al. Optical biopsy of human bladder neoplasia with in vivo confocal laser endomicroscopy. , 2009, The Journal of urology.
[54] R. Omary,et al. MR tracking of iron-labeled glass radioembolization microspheres during transcatheter delivery to rabbit VX2 liver tumors: feasibility study. , 2008, Radiology.
[55] W. Mai. Pseudolayering artefact on postcontrast magnetic resonance images of the bladder of 18 dogs and three cats , 2008, Veterinary Record.
[56] Marie-France Bellin,et al. Extracellular gadolinium-based contrast media: an overview. , 2008, European journal of radiology.
[57] N. Holalkere,et al. State-of-the-art cross-sectional imaging in bladder cancer. , 2007, Current problems in diagnostic radiology.
[58] F. Hollande,et al. DNA-methylation-dependent alterations of claudin-4 expression in human bladder carcinoma. , 2007, Carcinogenesis.
[59] C. Proukakis,et al. Immunotargeting of urothelial cell carcinoma with intravesically administered Tc-99m labeled HMFG1 monoclonal antibody , 2007, Cell Biophysics.
[60] J. Mintorovitch,et al. Comparison of Magnetic Properties of MRI Contrast Media Solutions at Different Magnetic Field Strengths , 2005, Investigative radiology.
[61] Yongmin Chang,et al. Magnetic resonance voiding cystography in the diagnosis of vesicoureteral reflux: Comparative study with voiding cystourethrography , 2005, Journal of magnetic resonance imaging : JMRI.
[62] D. Bluemke,et al. Dynamic MRI of bladder cancer: evaluation of staging accuracy. , 2005, AJR. American journal of roentgenology.
[63] C. Proukakis,et al. Immunolocalization of transitional cell carcinoma of the bladder with intravesically administered technetium-99m labelled HMFG1 monoclonal antibody , 2005, European Journal of Nuclear Medicine.
[64] R. Popert,et al. Near misses in bladder cancer - an airline safety approach to urology. , 2003, Annals of the Royal College of Surgeons of England.
[65] J. Koutcher,et al. Detection and quantitative analysis of early stage orthotopic murine bladder tumor using in vivo magnetic resonance imaging. , 2003, The Journal of urology.
[66] S. Hirohashi,et al. Hypermethylation of an E-cadherin (CDH1) promoter region in high grade transitional cell carcinoma of the bladder comprising carcinoma in situ. , 2003, The Journal of urology.
[67] A. Oto,et al. [Staging of urinary bladder tumors with CT and MRI]. , 2003, Tanisal ve girisimsel radyoloji : Tibbi Goruntuleme ve Girisimsel Radyoloji Dernegi yayin organi.
[68] B. Rutt,et al. Rapid combined T1 and T2 mapping using gradient recalled acquisition in the steady state , 2003, Magnetic resonance in medicine.
[69] M. Höglund,et al. Identification of cytogenetic subgroups and karyotypic pathways in transitional cell carcinoma. , 2001, Cancer research.
[70] E. Messing,et al. Assessment of murine bladder permeability with fluorescein: validation with cyclophosphamide and protamine. , 2001, Urology.
[71] B. Hamm,et al. Staging von Harnblasentumoren in der MRT: Wertigkeit der intravesikalen Applikation von eisenoxidhaltigem Kontrastmittel in Kombination mit hochaufgelöster T2-gewichteter Bildgebung , 2000 .
[72] K. Syrigos,et al. Intravesical administration of radiolabelled tumour-associated monoclonal antibody in bladder cancer. , 1999, Acta oncologica.
[73] J. Witjes,et al. Evaluation of chemotherapy in advanced urinary bladder cancer with fast dynamic contrast-enhanced MR imaging. , 1998, Radiology.
[74] R. Badalament,et al. Bladder tissue uptake of mitomycin C during intravesical therapy is linear with drug concentration in urine. , 1998, Clinical cancer research : an official journal of the American Association for Cancer Research.
[75] N. Arikan,et al. Staging with computed tomography, transrectal ultrasonography and transurethral resection of bladder tumour: comparison with final pathological stage in invasive bladder carcinoma. , 1996, British journal of urology.
[76] P. Rigatti,et al. Dynamic gadolinium-enhanced magnetic resonance imaging in staging of superficial bladder cancer. , 1996, The Journal of urology.
[77] M. Bibby,et al. ThioTEPA pharmacokinetics during intravesical chemotherapy: the influence of dose and volume of instillate on systemic uptake and dose rate to the tumour , 1996, Cancer Chemotherapy and Pharmacology.
[78] R. Hattori,et al. Detection of muscle layer invasion with submillimeter pixel MR images: staging of bladder carcinoma. , 1995, Magnetic resonance imaging.
[79] J. Au,et al. Effect of interstitial cystitis on drug absorption from urinary bladder. , 1994, The Journal of pharmacology and experimental therapeutics.
[80] P. Carroll,et al. Bladder tumor staging: comparison of contrast-enhanced CT, T1- and T2-weighted MR imaging, dynamic gadolinium-enhanced imaging, and late gadolinium-enhanced imaging. , 1994, Radiology.
[81] R. Badalament,et al. Penetration of mitomycin C in human bladder. , 1993, Cancer research.
[82] C. Bartolozzi,et al. MR Imaging with Stir Technique and Air Insufflation for Local Staging of Bladder Neoplasms , 1992, Acta radiologica.
[83] J. Husband. Staging bladder cancer. , 1992, Clinical radiology.
[84] P. Gowland,et al. Dynamic studies of gadolinium uptake in brain tumors using inversion‐recovery echo‐planar imaging , 1992, Magnetic resonance in medicine.
[85] B. Hamm,et al. Diagnostik von Harnblasenkarzinomen in der Kernspintomographie: Verbesserung mit Gd-DTPA? , 1991 .
[86] J. Dalton,et al. Evidence of significant absorption of sodium salicylate from urinary bladder of rats. , 1991, Journal of Pharmacology and Experimental Therapeutics.
[87] J. Chin,et al. Magnetic resonance imaging for detecting and treatment monitoring of orthotopic murine bladder tumor implants. , 1991, The Journal of urology.
[88] A. Bamias,et al. Intravesical administration of radiolabeled antitumor monoclonal antibody in bladder carcinoma. , 1991, Cancer research.
[89] N. Stellwagen,et al. Estimation of polyacrylamide gel pore size from Ferguson plots of linear DNA fragments. II. Comparison of gels with different crosslinker concentrations, added agarose and added linear polyacrylamide , 1991, Electrophoresis.
[90] M. Steward,et al. Water permeability of acinar cell membranes in the isolated perfused rabbit mandibular salivary gland. , 1990, The Journal of physiology.
[91] A. Elster,et al. Pseudolayering of Gd-DTPA in the urinary bladder. , 1990, Radiology.
[92] J. Husband,et al. Bladder cancer: staging with CT and MR imaging. , 1989, Radiology.
[93] G L Wolf,et al. Relaxation of water protons in the intra‐ and extracellular regions of blood containing Gd(DTPA) , 1986, Magnetic resonance in medicine.
[94] H. Hricak,et al. Urinary bladder MR imaging. Part I. Normal and benign conditions. , 1985, Radiology.
[95] G M Bydder,et al. Gadolinium‐DTPA as a Contrast Agent in MR Imaging—Theoretical Projections and Practical Observations , 1985, Journal of computer assisted tomography.
[96] G M Bydder,et al. Gadolinium-DTPA as a contrast agent in MRI: initial clinical experience in 20 patients. , 1984, AJR. American journal of roentgenology.
[97] D. Bagley,et al. Selective surface staining of bladder tumors by intravesical methylene blue with enhanced endoscopic identification , 1984, Cancer.
[98] W. Gill,et al. In vivo mapping of bladder cancer (chromocystoscopy for in vivo detection of neoplastic urothelial surfaces). , 1984, Urology.
[99] B. Hainau,et al. Permeability and ultrastructure of human bladder epithelium. , 1983, British journal of urology.
[100] K. Igarashi,et al. In vivo staining test with methylene blue for bladder cancer. , 1983, The Journal of urology.
[101] G. Fellows. Permeability of Normal and Diseased Human Bladder Epithelium , 1972, Proceedings of the Royal Society of Medicine.
[102] F. Bloch,et al. The Principle of Nuclear Induction. , 1953, Science.