IFU Downloads
Hive Standalone Cervical System
Hive PL and TL Interbody System
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NanoHive Medical, LLC (formerly HD Lifesciences, LLC) Virtual Patent Marking
The NanoHive Medical, LLC products listed below are protected by patents in the United States and elsewhere. This website is provided to satisfy the virtual patent marking provisions of various jurisdictions including the virtual patent marking provisions of the America Invents Act (September 16, 2011).
The following list of products may not be all inclusive, and any other product not listed here may be protected by one or more patents. The products listed may be protected by additional patents, and other patents may be pending in the U.S. and elsewhere.
– Hive C, TL, PL, AL & AL Standalone Interbody Systems
– Protected by U.S. Patents:
• 9,962,269; 10,405,983 (Implant with Independent Endplates) • 10,888,429; 10,368,997 (Three Dimensional Lattice Structure for Implants) • 10,695,184; 15/895,213 (Methods of Designing Lattice Structures) • 15/895,213 (Methods of Designing Lucent Structures) • 10,624,746 (Fluid Interface System for Implants) • 10,881,518 (Anisotropic Biocompatible Lattice Structure) • 16/523,962 (Cervical Stand Alone)
[1] Test data on file. [2] BONE HOLD SPACE [3] Christopher L. Jones, Bartosz Wojewnik, Jason Tinley. (2018). Achieving Total-Implant Bone-Matched Modulus with 3D-Printed Soft Titanium® in Spinal Interbody Fusion [White Paper]. HD Lifesciences. [4] https://www.matweb.com/search/datasheet_print.aspx?matguid=2164cacabcde4391a596640d553b2ebe [5] Materials Properties Handbook: Titanium Alloys, R. Boyer, G. Welsch, and E. W. Collings, eds. ASM International, Materials Park, OH, 1994. [6] N. J. Bassous, C. L. Jones and T. J. Webster, 3-D printed Ti-6Al-4V scaffolds for supporting osteoblast and restricting bacterial functions without using drugs: Predictive equations and experiments, Acta Biomaterialia 96 (2019) 662–673, https://doi.org/10.1016/j.actbio.2019.06.055 [7] CL Jones, D Bichara, J Toy, J Tinley. (2018) “Bone In Growth with 3D-Printed Soft Titanium® Scaffold.” [White Paper], HD LifeSciences, LLC. [8] Ejiofor J., et al, Bone Cell Adhesion on Titanium Implants with Nanoscale Surface Features. International Journal of Powder Metallurgy, 40(2), 43-53. HD Lifesciences. [9] Christopher L. Jones, Ilsa Webeck, Jason Tinley. (2018). NanoHive™ with Soft Titanium® is Preferred 3D Printed Interbody Device on Radiographic Inspection [White Paper]. HD Lifesciences.
