The Role of MRI in Diagnosing Brain Tumors
- Authors
-
-
Nagwa R. Bochwal
College of Health Sciences, University of Tobruk, Tobruk, LibyaAuthor -
Huda M. Ibrahim
College of Health Sciences, University of Tobruk, Tobruk, LibyaAuthor -
Eman.Y. Abdelsameh
College of Health Sciences, University of Tobruk, Tobruk, LibyaAuthor -
Wfa. A. A. Nweh
College of Health Sciences, University of Tobruk, Tobruk, LibyaAuthor -
Retaj.N. saad
College of Health Sciences, University of Tobruk, Tobruk, LibyaAuthor -
Salwa.F. Ahmed
College of Health Sciences, University of Tobruk, Tobruk, LibyaAuthor -
Najat.S. Shref
College of Health Sciences, University of Tobruk, Tobruk, LibyaAuthor -
Retaj. M. Jomaa
College of Health Sciences, University of Tobruk, Tobruk, LibyaAuthor -
Firdous N. Saad
College of Health Sciences, University of Tobruk, Tobruk, LibyaAuthor -
Haneen F. Awad
College of Health Sciences, University of Tobruk, Tobruk, LibyaAuthor -
Nedaa M. Mohammed
College of Health Sciences, University of Tobruk, Tobruk, LibyaAuthor
-
- Keywords:
- Magnetic Resonance imaging (MRI), brain, tumor ، contrast, Tobruk Medical Center
- Abstract
-
Background: Magnetic resonance imaging (MRI) serves as a cornerstone diagnostic tool for intracranial neoplasms, owing to its superior tissue contrast resolution and spatial definition. Early identification of lesions is critical to optimizing therapeutic strategies and enhancing overall survival rates. Aim: To assess the diagnostic utility of MRI in detecting, characterizing, and localizing brain tumors. Methods: This cross-sectional study evaluated 45 individuals suspected of harboring brain tumors at Tobruk Medical Center between November 2025 and January 2026. Scans were performed using a 1.5-Tesla MRI system employing standard T1-weighted, T2-weighted, and FLAIR protocols, with intravenous gadolinium contrast administered as clinically indicated. Data extracted from radiological archives and clinical records were processed via Microsoft Excel. Results: Among the 45 participants (age range: 18–80 years), males comprised 51.1% and females 48.9%, with a predominant occurrence in individuals over 40 years old. Utilizing a combined protocol of T1, T2, and FLAIR sequences markedly enhanced lesion detection, whereas contrast-enhanced imaging provided superior definition of tumor borders and vascularity. A substantial majority of patients were diagnosed at advanced disease stages. Conclusion: MRI remains a highly reliable imaging technique for evaluating brain tumors and guiding clinical management. Nevertheless, delayed clinical presentation substantially limits its efficacy. Enhancing diagnostic awareness and radiological training is essential to improve outcomes
- Downloads
-
Download data is not yet available.
- References
-
Afridi M., Jain A., Aboian M., Payabvash S. (2022). Brain Tumor Imaging: Applications of Artificial Intelligence. Seminars in Ultrasound, CT and MRI, 43(2), 153–169. doi: 10.1053/J.SULT.2022.02.005. DOI: https://doi.org/10.1053/j.sult.2022.02.005
Amin J., Sharif M., Gul N., Yasmin M., Shad S.A. (2020). Brain tumor classification based on DWT fusion of MRI sequences using convolutional neural network. Pattern Recognition Letters, 129, 115–122. doi: 10.1016/J.PATREC.2019.11.016. DOI: https://doi.org/10.1016/j.patrec.2019.11.016
Clifton W., Reimer R. (2019). Metastatic brain tumors. In: Comprehensive Overview of Modern Surgical Approaches to Intrinsic Brain Tumors. Elsevier: Academic Press, pp.159–167. doi:10.1016/B978-0-12-811783-5.00008-2. DOI: https://doi.org/10.1016/B978-0-12-811783-5.00008-2
Dekker, A. and Sijbers, J. (2005). Advanced Image Processing in Magnetic Resonance Imaging. CRC Press, Taylor and Francis Group.
Fraioli F., Punwani S. (2014). Clinical and research applications of simultaneous positron emission tomography and MRI. British Journal of Radiology, 87(1033). doi:10.1259/bjr.20130464. DOI: https://doi.org/10.1259/bjr.20130464
Hill C.I., Nixon C.S., Ruehmeier J.L., Wolf L.M. (2002). Brain tumors. Physical Therapy, 82(5), 496–502. doi:10.1093/PTJ/82.5.496. DOI: https://doi.org/10.1093/ptj/82.5.496
Jelski W., Mroczko B. (2021). Molecular and circulating biomarkers of brain tumors. International Journal of Molecular Sciences, 22(13), 7039. DOI: https://doi.org/10.3390/ijms22137039
Kumar A., Ramachandran M., Gandomi A.H., Patan R., Lukasik S., Soundarapandian R.K. (2019). A deep neural network based classifier for brain tumor diagnosis. Applied Soft Computing, 82, 105528. DOI: https://doi.org/10.1016/j.asoc.2019.105528
Lapointe S., Perry A., Butowski N.A. (2018). Primary brain tumours in adults. The Lancet, 392(10145), 432–446. DOI: https://doi.org/10.1016/S0140-6736(18)30990-5
Lecler A., Charbonneau F., Psimaras D., Metten M.A., Gueguen A., Xuan K.H., et al. (2018). Remote brain microhaemorrhages may predict haematoma in glioma patients treated with radiation therapy. European Radiology, 28(10), 4324–4333. DOI: https://doi.org/10.1007/s00330-018-5356-8
Mehta S., Shah A., Jung H. (2017). Diagnosis and treatment options for sequelae following radiation treatment of brain tumors. Clinical Neurology and Neurosurgery, 163, 1–. DOI: https://doi.org/10.1016/j.clineuro.2017.09.010
Nelson S., Taylor L.P. (2014). Headaches in brain tumor patients: Primary or secondary? Headache: The Journal of Head and Face Pain, 54(4), 776–785. DOI: https://doi.org/10.1111/head.12326
Nibib.nih.gov. (2016). Magnetic Resonance Imaging (MRI) | National Institute of Biomedical Imaging and Bioengineering. [online] Available at: https://www.nibib.nih.gov/science-education/science-topics/magnetic-resonance-imaging-mri [Accessed: 01 July, 2017].
Patient. (2016). Magnetic Resonance Imaging. [online] Available at: http://patient.info/doctor/magnetic-resonance-imaging [Accessed: 03 June. 2017].
Revett K. (2011). An Introduction to Magnetic Resonance Imaging: From Image Acquisition to Clinical Diagnosis. Innovations in Intelligent Image Analysis, 127–161. DOI: https://doi.org/10.1007/978-3-642-17934-1_7
Rigi M., Almarzouqi S.J., Morgan M.L., Lee A.G. (2015). Papilledema: Epidemiology, etiology, and clinical management. Eye and Brain, 7, 47. DOI: https://doi.org/10.2147/EB.S69174
Saman S., Jamjala Narayanan S. (2018). Survey on brain tumor segmentation and feature extraction of MR images. International Journal of Multimedia Information Retrieval, 8(2), 79–99. doi:10.1007/S13735-018-0162-2. DOI: https://doi.org/10.1007/s13735-018-0162-2
Udaka Y.T., Packer R.J. (2018). Pediatric brain tumors. Neurologic Clinics, 36(3), 533–536. doi:10.1016/j.ncl.2018.04.009. DOI: https://doi.org/10.1016/j.ncl.2018.04.009
Vargo M. (2011). Brain tumor rehabilitation. American Journal of Physical Medicine & Rehabilitation, 90(5), S50–S62. DOI: https://doi.org/10.1097/PHM.0b013e31820be31f
- Downloads
- Published
- 2026-08-09
- Issue
- Vol. 7 No. 1 (2026)
- Section
- Original Articles
- License
-

This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.
How to Cite
Similar Articles
- Nagwa R Bochwal, Hawaa M Gasem, Mona Edress Othman, Eman Y A Abdelsameh, Amal Helal Moftah, Alshima Ali Saleh, Bothina Awad Mousa, Fatima Mohammed Rizq, Fatima Jamal Idris, Cervical and Lumbar Disc Herniation A Comprehensive Review of Diagnosis and Management Using Magnetic Resonance Imaging , Derna Academy Journal for Applied Sciences: Vol. 6 No. 2 (2026)
- Nagat. F. A. Bolowia, Computed Tomography (CT) Scans: Advancements in Oncology Diagnosis and Treatment , Derna Academy Journal for Applied Sciences: Vol. 3 No. 2 (2025)
- Fatalla Merjan Daboos, Eisa S Omar, Osama Muftah Ahmed, Antibiotic Susceptibility and Resistance Patterns of Staphylococcus aureus Isolated from Pus Samples in Tobruk Medical Center at Tobruk, Libya , Derna Academy Journal for Applied Sciences: Vol. 5 No. 1 (2025)
- Abdelkader Alrabai, U-Net Based approach for Brain Tumor Segmentation , Derna Academy Journal for Applied Sciences: Vol. 4 No. 2 (2025)
- Hamdi Lemamsha , Gurch Randhawa, Retaj Najem, Retaaj Almabrouk, Amira Edries, Eman Abdalla, Amani Sulemen , Impact of Diet and Lifestyle Modification on Obesity and Thyroid Symptom Severity in Adults with Hypothyroidism in Tobruk: A six -Month Pre–Post Study , Derna Academy Journal for Applied Sciences: Vol. 6 No. 2 (2026)
- Ghamela Ali, Nouri Gayth Mammesh, Hajir Sultan, Tagred Blash, Marwa , Roiya Shuwaikh, Retrospective Analysis of Low Birth Weight in NICU Admissions: Incidence, Risk Factors, and Neonatal Outcomes, 2024 , Derna Academy Journal for Applied Sciences: Vol. 7 No. 2 (2026)
- Rudhuway Abdulqadir Mtawil, Sabrien Aboubaker, Esraa Fathallah Yousif, Enas Ali Abdelqader, Mohammed Edris Salem, Almoataz Bellah Awad Saleh, Safa Saleh Altayeb, Fatma Abdelrahem Omran, Incidence of Primary Polycythemia Vera in Tobruk City , Derna Academy Journal for Applied Sciences: Vol. 6 No. 2 (2026)
- Salem Zaed, Asfiedeen Saleh, Sara Ali , Mawada Dbdel Salam , Asmaa Idris , Danya Saeed , Nawal Misbah , Clinical Characteristics and Admission Patterns of Hospitalized Children in a Pediatric Department at Tobruk Medical Center: Retrospective Study , Derna Academy Journal for Applied Sciences: Vol. 6 No. 1 (2026)
- Osamah Miftah Ahmed, Miftah Larbid, Alkadafe Agelah, Prevalence and Antimicrobial Resistance Patterns of Uropathogenic Bacteria Isolated at Tobruk Medical Center, Tobruk, Libya: A 4-Year Retrospective Study , Derna Academy Journal for Applied Sciences: Vol. 7 No. 1 (2026)
- Munira A Hamad, Amane S yousi, Assessment of Sepsis Markers in Patients Admitted to the Pediatric Intensive Care Unit in Medical Tobruk Center , Derna Academy Journal for Applied Sciences: Vol. 6 No. 2 (2026)
You may also start an advanced similarity search for this article.



