Department of Biomedical Engineering - USTP Main Campus

Department of Biomedical Engineering - USTP Main Campus Contact information, map and directions, contact form, opening hours, services, ratings, photos, videos and announcements from Department of Biomedical Engineering - USTP Main Campus, College & University, Lourdes, Alubijid.

The official page of Biomedical Engineering Program at University of Science and Technology of Southern Philippines (USTP), that is dedicated to training the next generation of engineers who are equipped to innovate and improve healthcare technologies ✨

🌟  πŒπˆπ‹π„π’π“πŽππ„ π…πŽπ‘ 𝐔𝐒𝐓𝐏 π€π‹π”ππˆπ‰πˆπƒ πŒπ€πˆπ | ππˆπŽπŒπ„πƒπˆπ‚π€π‹ π„ππ†πˆππ„π„π‘πˆππ†!Mr. Miko Louel Z. Palma, the first DOST-SEI scholar from th...
23/07/2026

🌟 πŒπˆπ‹π„π’π“πŽππ„ π…πŽπ‘ 𝐔𝐒𝐓𝐏 π€π‹π”ππˆπ‰πˆπƒ πŒπ€πˆπ | ππˆπŽπŒπ„πƒπˆπ‚π€π‹ π„ππ†πˆππ„π„π‘πˆππ†!

Mr. Miko Louel Z. Palma, the first DOST-SEI scholar from the BS Biomedical Engineering program, will serve as USTP Main Campus–Alubijid’s first delegate to the 2026 Scholars Leadership Camp on July 22–26, 2026, at Nouveau Hotel in Mahinog, Camiguin.

Organized by DOST-SEI in collaboration with DOST Region X, the camp gathers 100 undergraduate scholars for leadership, communication, professional excellence, social responsibility, and servant leadership activities.

Congratulations, Miko! May this experience inspire you to continue leading with excellence, patriotism, and a heart for service. πŸ’™βš™οΈπŸ‡΅πŸ‡­

Congratulations USTP-BME FindLab
23/07/2026

Congratulations USTP-BME FindLab

πŸ† FindLab Secures Runner-Up at Go Healthy with Taiwan 2026!Congratulations to FindLab, represented by Miko Louel Palma o...
21/07/2026

πŸ† FindLab Secures Runner-Up at Go Healthy with Taiwan 2026!

Congratulations to FindLab, represented by Miko Louel Palma of the Biomedical Engineering Department, for being declared runner-up in the Go Healthy with Taiwan 2026 Pitching Competition held at the University of Science and Technology of Southern Philippines.

Organized by Taiwan Excellence with the theme β€œHealthier Futures Together,” the competition showcased innovative ideas aimed at improving healthcare, wellness, and quality of life.

This achievement highlights the creativity, entrepreneurial spirit, and commitment of our Biomedical Engineering students to developing meaningful, technology-driven healthcare solutions.

Your USTP and Biomedical Engineering family are proud of you! πŸŽ‰πŸ‘

Transforming Modern Dentistry Through Biomedical EngineeringBy: Engr. Christian Rey M. Alison, ECE, ECT, MSEEElectronics...
19/07/2026

Transforming Modern Dentistry Through Biomedical Engineering
By: Engr. Christian Rey M. Alison, ECE, ECT, MSEE
Electronics Engineer & Biomedical Engineering Faculty
University of Science and Technology of Southern Philippines Main- Alubijid

Biomedical engineering (BME) in dentistry integrates engineering principles and technologies with dental science to improve the diagnosis, treatment, and prevention of oral diseases. Many modern dental diagnostic and treatment tools have emerged directly or indirectly from biomedical engineering. Among its most important contributions are digital technologies, advanced materials, and precision equipment that enhance the quality, safety, and efficiency of dental care.

Biomaterials are essential in treating, repairing, or replacing damaged oral tissues. These include biodegradable polymers for targeted drug delivery, metals and alloys for dental implants, and ceramics and composites for restorations. Dental biomaterials are designed to withstand challenging oral conditions, including acidity, moisture, temperature changes, and repeated chewing forces. Some also possess antimicrobial properties that may reduce bacterial growth, lower the risk of secondary caries, and extend the service life of restorations. In addition to improving the appearance of restored teeth, biomaterials support oral function and patients’ overall well-being.

Dental implants are medical devices surgically placed into the jawbone to replace missing teeth and support crowns, bridges, or dentures. Tooth loss caused by injury or disease may lead to bone loss, speech difficulties, altered chewing patterns, and discomfort. Dental implants offer a durable solution that closely resembles the appearance and function of natural teeth. They can help preserve the jawbone and facial structure, restore normal chewing, support healthier food choices, and improve patients’ confidence and quality of life. However, their long-term success depends on proper clinical assessment, surgical placement, oral hygiene, and regular dental care.

Computer-Aided Design and Computer-Aided Manufacturing (CAD/CAM) have also transformed restorative dentistry. These technologies allow dental professionals to digitally design and manufacture customized crowns, bridges, inlays, onlays, and veneers. In some cases, restorations can be completed within hours instead of requiring several days. Because CAD/CAM systems use digital scans, they can produce highly precise restorations with improved fit, comfort, durability, and natural appearance. They also streamline clinical workflows and reduce patients’ waiting time.
Similarly, three-dimensional (3D) printing has become a valuable tool in dentistry and orthodontics. Through additive manufacturing, dental professionals can rapidly produce customized models, surgical guides, aligners, denture frameworks, and other dental appliances without relying entirely on conventional molds. Its high level of precision can result in better-fitting devices and more individualized treatment. On-demand production may also reduce material waste, shorten manufacturing time, and minimize the need to maintain large inventories, contributing to more economical and sustainable dental practice.

Tissue engineering represents another promising field in dental regeneration. It aims to repair or replace damaged structuresβ€”including dentin, dental pulp, periodontal ligament, and alveolar boneβ€”through the coordinated use of cells, scaffolds, biomaterials, and bioactive molecules. Researchers are also exploring approaches for regenerating enamel and more complex dental structures. In the future, these developments may allow clinicians to restore damaged tissues more naturally, preserve oral function, and provide less invasive treatments with better long-term outcomes.
Biomedical engineering has brought transformative changes to dentistry. Innovations in biomaterials, dental implants, CAD/CAM systems, 3D printing, and tissue engineering have improved the precision, efficiency, and quality of dental treatment while enhancing patient comfort and clinical outcomes. As biomedical engineering continues to advance, it is expected to expand treatment possibilities, make dental services more personalized and accessible, and further improve oral health and patients’ quality of life.

Transforming Modern Dentistry Through Biomedical Engineering

By: Engr. Christian Rey M. Alison, ECE, ECT, MSEE
Electronics Engineer & Biomedical Engineering Faculty
University of Science and Technology of Southern Philippines Main- Alubijid

Biomedical engineering (BME) in dentistry integrates engineering principles and technologies with dental science to improve the diagnosis, treatment, and prevention of oral diseases. Many modern dental diagnostic and treatment tools have emerged directly or indirectly from biomedical engineering. Among its most important contributions are digital technologies, advanced materials, and precision equipment that enhance the quality, safety, and efficiency of dental care.

Biomaterials are essential in treating, repairing, or replacing damaged oral tissues. These include biodegradable polymers for targeted drug delivery, metals and alloys for dental implants, and ceramics and composites for restorations. Dental biomaterials are designed to withstand challenging oral conditions, including acidity, moisture, temperature changes, and repeated chewing forces. Some also possess antimicrobial properties that may reduce bacterial growth, lower the risk of secondary caries, and extend the service life of restorations. In addition to improving the appearance of restored teeth, biomaterials support oral function and patients’ overall well-being.

Dental implants are medical devices surgically placed into the jawbone to replace missing teeth and support crowns, bridges, or dentures. Tooth loss caused by injury or disease may lead to bone loss, speech difficulties, altered chewing patterns, and discomfort. Dental implants offer a durable solution that closely resembles the appearance and function of natural teeth. They can help preserve the jawbone and facial structure, restore normal chewing, support healthier food choices, and improve patients’ confidence and quality of life. However, their long-term success depends on proper clinical assessment, surgical placement, oral hygiene, and regular dental care.

Computer-Aided Design and Computer-Aided Manufacturing (CAD/CAM) have also transformed restorative dentistry. These technologies allow dental professionals to digitally design and manufacture customized crowns, bridges, inlays, onlays, and veneers. In some cases, restorations can be completed within hours instead of requiring several days. Because CAD/CAM systems use digital scans, they can produce highly precise restorations with improved fit, comfort, durability, and natural appearance. They also streamline clinical workflows and reduce patients’ waiting time.
Similarly, three-dimensional (3D) printing has become a valuable tool in dentistry and orthodontics. Through additive manufacturing, dental professionals can rapidly produce customized models, surgical guides, aligners, denture frameworks, and other dental appliances without relying entirely on conventional molds. Its high level of precision can result in better-fitting devices and more individualized treatment. On-demand production may also reduce material waste, shorten manufacturing time, and minimize the need to maintain large inventories, contributing to more economical and sustainable dental practice.

Tissue engineering represents another promising field in dental regeneration. It aims to repair or replace damaged structuresβ€”including dentin, dental pulp, periodontal ligament, and alveolar boneβ€”through the coordinated use of cells, scaffolds, biomaterials, and bioactive molecules. Researchers are also exploring approaches for regenerating enamel and more complex dental structures. In the future, these developments may allow clinicians to restore damaged tissues more naturally, preserve oral function, and provide less invasive treatments with better long-term outcomes.

Biomedical engineering has brought transformative changes to dentistry. Innovations in biomaterials, dental implants, CAD/CAM systems, 3D printing, and tissue engineering have improved the precision, efficiency, and quality of dental treatment while enhancing patient comfort and clinical outcomes. As biomedical engineering continues to advance, it is expected to expand treatment possibilities, make dental services more personalized and accessible, and further improve oral health and patients’ quality of life.

18/07/2026

When leadership finds its rhythm, every step moves with purpose. πŸ’šβœ¨
In every step, every challenge, and every dream we strive to achieve, we continue to grow together through SIBOL, nurturing leadership, unity, and service for the student body.
Together, we rise. Together, we grow. Together, we SIBOL. 🌱
Credits to the following;
Videographer: Mayrianne Danielle Solis
Editor: Kirk Mclean Jhon Javier
Director: April Rose Paz, Miko Louel Palma, and
Kirk Mclean Jhon Javier
USG Executive and Legislative officers πŸ’šπŸŒ± See less

Take a read | Our sophomore student got featured in the Mindanao Daily News for his AI Based search engine for Biomedica...
12/07/2026

Take a read | Our sophomore student got featured in the Mindanao Daily News for his AI Based search engine for Biomedical Engineering and clinical research

Congratulations to Engr. Alison and Engr. Magsayo πŸŽ‰
28/06/2026

Congratulations to Engr. Alison and Engr. Magsayo πŸŽ‰

πŸŽ“βœ¨ A Celebration of Excellence, Dedication, and Lifelong Learning βœ¨πŸŽ“

The Biomedical Engineering Society of Students proudly congratulates Engr. Christian Rey M. Alison, ECE, ECT, MSEE, Acting Chairman of the Biomedical Engineering Department, and Engr. Mitchel Q. Magsayo, faculty member of the Biomedical Engineering Department, on their outstanding academic milestones! πŸ’™

Engr. Christian Rey Alison has successfully earned his Master of Science in Electrical Engineering, while Engr. Mitchel Q. Magsayo has successfully completed the Master of Engineering Program with Specialization in Electrical Engineering.

Your journeys are a testament to the power of perseverance, resilience, and the pursuit of lifelong learning. Through your unwavering dedication to education, research, and student development, you continue to inspire every aspiring biomedical engineer to strive for excellence and embrace the value of continuous growth.

The entire BESS family celebrates this well-deserved success and wishes you both continued excellence in your academic and professional endeavors.

Congratulations once again, Engr. Christian and Engr. Mitchel! Your BESS family is incredibly proud of you. πŸ’™πŸŽ‰





Empowering young leaders for a healthier Barangay Kauswagan. πŸ’šHealthCheck Academy Module 2 for Sector A1: Human Body Sys...
23/06/2026

Empowering young leaders for a healthier Barangay Kauswagan. πŸ’š

HealthCheck Academy Module 2 for Sector A1: Human Body Systems and Community Health Issues on June 19, 2026, at the Admin Building of Barangay Kauswagan, Cagayan de Oro City.

Together with the SK Kauswagan, the session gathered Sector A1 zone leaders and youth leaders as they continue to take part in developing community healthcare programs and people-centered solutions for the barangay. Aside from learning about human body systems and community health issues, the participants also engaged in a design thinking workshop that encouraged collaboration, creativity, and problem-solving.

Through HealthCheck Academy, young leaders are empowered to become active partners in building a more responsive, inclusive, and health-conscious community.

HEALTH CHECK ACADEMY Module 2!On June 19, 2026, the Health Check Academy successfully conducted its Session 2, bringing ...
23/06/2026

HEALTH CHECK ACADEMY Module 2!
On June 19, 2026, the Health Check Academy successfully conducted its Session 2, bringing together young participants in another meaningful learning experience focused on strengthening their knowledge, awareness, and capacity to become advocates of health and wellness in the community.
Through engaging discussions, shared experiences, and collaborative activities, participants gained valuable insights that will help them make informed choices and contribute to creating a healthier and more supportive environment for everyone.
The SK Council of Kauswagan, together with USTP BME, remains committed to providing programs that nurture youth development, promote health awareness, and empower young people to become active partners in community transformation
See less

HEALTH CHECK ACADEMY SESSION 2!

On June 19, 2026, the Health Check Academy successfully conducted its Session 2, bringing together young participants in another meaningful learning experience focused on strengthening their knowledge, awareness, and capacity to become advocates of health and wellness in the community.

Through engaging discussions, shared experiences, and collaborative activities, participants gained valuable insights that will help them make informed choices and contribute to creating a healthier and more supportive environment for everyone.

The SK Council of Kauswagan, together with USTP BME, remains committed to providing programs that nurture youth development, promote health awareness, and empower young people to become active partners in community transformation

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Lourdes
Alubijid
9000

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