Light emitting bone implants
A bone implant includes a rod having an aperture extending entirely through the rod. The aperture is to receive a fastener to couple the rod to a bone of a patient. The bone implant also includes a light source disposed on the rod. The light source is to emit light onto a portion of the bone adjacent the rod to at least one of stimulate bone growth or reduce bone loss.
1. A bone implant in electrical communication with a controller, the bone implant being implanted in a bone of a patient, the bone implant comprising:
a rod having an aperture extending entirely through the rod, the aperture to receive a fastener to couple the rod to the bone of the patient, the rod and a light source implanted in the bone of the patient;
the light source disposed on the rod; and
wherein the controller is in electrical communication with the light source, the controller being configured to execute a program to provide a signal to the light source, the signal causing the light source to emit light onto a portion of the bone adjacent the rod to at least one of stimulate bone growth or reduce bone loss.
2. The bone implant of claim 1 , wherein the controller is operatively coupled to the light source via a frangible lead.
3. The bone implant of claim 1 , wherein the rod is curved.
4. The bone implant of claim 3 , wherein a portion of the light source extends through an end wall defining the channel.
5. The bone implant of claim 1 , wherein the rod includes a channel, the light source disposed in the channel.
6. The bone implant of claim 1 , wherein the rod includes a passageway extending entirely through the rod along a central, longitudinal axis of the rod.
7. The bone implant of claim 1 , wherein the light source is to emit near infrared light.
8. The bone implant of claim 1 , wherein the light source is to emit light having wavelengths from about 600 nanometers to about 950 nanometers.
9. The bone implant of claim 1 , wherein the signal to the light source is a first signal occurring at a first time period during a first day; and
wherein the program further includes providing a second signal to the light source during a second time period during a second day, the second signal causing the light source to emit light onto a portion of the bone adjacent the rod to at least one of stimulate bone growth or reduce bone loss.
10. A bone implant implanted in a bone of a patient, the bone implant comprising:
a rod having an aperture extending entirely through the rod, the aperture to receive a fastener to couple the rod to the bone of the patient;
a light source disposed on the rod, the light source to emit light onto a portion of the bone of the patient, adjacent the rod to at least one of stimulate bone growth or reduce bone loss;
a controller operatively coupled to the light source via a frangible lead; and
wherein the controller is to control power supplied to the light source to enable the bone implant to deliver doses of light of four Joules to six Joules of energy per day.
11. A bone implant, the bone implant being implanted in a bone of a patient, the bone implant comprising:
a light source to emit light having a wavelength from about 600 nanometers to about 950 nanometers, the light source implanted in the bone of the patient;
an aperture extending through the bone implant, the aperture to receive a fastener to secure the bone implant to the bone; and
wherein the light source delivers a predetermined dose of light to the bone of the patient.
12. The bone implant of claim 11 , further comprising:
a controller in electrical communication with the light source; and
a lead to electronically connect the light source to the controller, the lead having a frangible joint.
13. The bone implant of claim 11 , further comprising:
a controller in electrical communication with the light source and a power source; and
wherein the controller is configured to execute a program to control power supplied to the light source to enable the light source to deliver a predetermined dose of light to a bone.