Innovative Care

The Future of Complex 3D Imaging & Robotic Navigation Interventions:

 

  • Minimally-Invasive Image-Guided Procedures

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  • Complex Spinal Disorders & Interventions

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  • Cervical, Thoracic, Lumbar, & Sacral Spine Injuries

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  • Vertebral Fractures & Pars Defect Repair

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  • Upper Cervical Spinal Instability Interventions

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  • Atlanto-Axial & Cranio-Cervical Instability

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  • Degenerative Disc Bulges & Herniations

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  • Spinal Spondylosis & Facet Arthritis

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  • SI Joint Instability & Sacral Injuries

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  • Interventional Orthopedics

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  • Joint, Arthritis, & Cartilage Patching Repair

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  • Meniscus, Tendon, Ligament, & Labral Repair

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  • Neuropathy, Radiculopathy, Plexopathy

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  • Nerve Decompression & Tunnel Syndromes

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  • Nerve Blocks, Transections, Ablations, & Ganglion Blocks

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  • Thoracic Outlet Syndrome & Brachial Plexus Injuries

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  • Dynamic Imaging of Complex Injuries & Conditions

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  • High-Resolution 3D CT-Guided & Ultrasound-Guided Procedures

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  • Micro-Endoscopic & Arthroscopic Procedures

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  • Stem Cell Therapies

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  • PRF & PRP Injections

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  • Stem Cell Patches & Regenerative Scaffolding Matrix

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  • Tissue Engineering & Stem Cell Hydrogels

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  • Tissue Reconstruction, Patching, & Repair Strategies

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  • Targeted Peptides & Biologics

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  • Surgery Alternatives for Joint Preservation

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  • Vascular Access & Doppler Flow Imaging

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  • Brain & Spinal Cord Injuries

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  • Acute & Chronic Pain Interventions

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  • Emergency Critical Care

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  • Specialized Procedural Customization with Advanced Imaging

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Skyentia Header Logo

Skyentia Technologies is a company focused on innovative projects pertaining to both biotechnology and medical devices. This includes the development of 3D image-guided robotic-assisted surgery and interventions for spine & orthopedic interventions, 3D tissue engineering strategies for tissue repair, novel interfaces for neural implant devices, and neuroprotective interventions for traumatic brain and spinal cord injuries. More information can be obtained at www.skyentia.com.

These systems hold tremendous values for treatment of a wide variety of complex spine, orthopedic, joint, nerve, & sports medicine injuries & pain conditions, with a focus on minimally-invasive image-guided interventional procedures to directly target and repair specific tissue injuries.

Dr. Richard J. McMurtrey MD, MSc is both a surgeon and a biomedical engineer, and he is one of the only doctors in the world who has both neurosurgical and orthopedic surgery expertise as well as biomedical engineering expertise from the rigorous and prestigious program at the University of Oxford. He has made many research discoveries at some of the best university research labs in the world and published works in top-tier research journals. He was the first to introduce tissue engineering applications in surgical interventions use minimally-invasive 3D tissue engineering approach to many types of injury repair, and he has advanced the most cutting-edge minimally-invasive 3D image-guided robotic systems to address a wide variety of complex injuries in the least invasive and most reparative way possible.

Minimally-Invasive 3D Robotically-Guided Interventions

A New Age of Neurologic & Orthopedic Surgery

3D State-of-the-Art Imaging

New diagnostic & interventional capabilities

Advanced 3D high-resolution visualization of surgical hardware instrumentation, endoscopic & arthroscopic approaches.

Minimally-Invasive ToolKits

Unlock innate rapid healing potential

The most advanced spine & orthopedic toolkit for complex anatomy as well as minimally-invasive image-guided procedures.

3D Tissue Engineering

Orthobiologic Plasma & Cell Therapies

Tissue engineering can provide cellular repair & reinforcement of tissue architecture, especially when anchored to injury sites with protein scaffolds to enhance cell survival, integration, & repair using 3D navigation.

PRF, PRP, & A2M Injections

Regenerative Scaffolding Matrix & Hydrogel Patches

Regenerative agents like stem cells & growth factors can be embedded in sticky biomaterial hydrogels & scaffolding matrix and can be used to patch, cushion, reinforce, & rebuild injured tissues.

The Future of Minimally-Invasive 3D Image-Guided Procedures

Minimally-Invasive 3D Image-Guided Robotically-Assisted Procedures

Innovation in Biomedical Engineering

Cutting-edge 3D Robotically-Assisted Procedural Navigation