Device and method for in vivo detection of clots within circulatory vessels
A device and method of using the device to detect the presence and composition of clots and other target objects in a circulatory vessel of a living subject is described. In particular, devices and methods of detecting the presence and composition of clots and other target objects in a circulatory vessel of a living subject using in vivo photoacoustic flow cytometry techniques is described.
1. A method for continuous monitoring of a circulatory vessel of a living organism, the method comprising:
pulsing circulating target objects comprising red blood cells and at least one clot within the circulatory vessel with at least one pulse of laser energy at a first pulse wavelength ranging between 400 nm and 2500 nm, wherein the first pulse wavelength induces a photoacoustic signal from the circulating target objects, and wherein the red blood cells are light absorbing and the clots are non-absorbing;
obtaining a photoacoustic pattern induced by the at least one pulse of laser energy, wherein the photoacoustic pattern comprises at least one photoacoustic signal comprising a background photoacoustic signal produced by the red blood cells;
analyzing the photoacoustic pattern to determine the presence of a negative dip in the photoacoustic pattern, wherein the negative dip in the photoacoustic pattern below the background photoacoustic signal indicates the presence of the clot; and
producing a detection signal when the photoacoustic pattern indicates a clot.
2. The method of claim 1 , wherein the first pulse wavelength ranges from 500 nm to 600 nm.
3. The method of claim 1 , wherein the photoacoustic pattern comprises a series of photoacoustic signals induced by a series of consecutive laser pulses at the first pulse wavelength.
4. The method of claim 1 , further comprising:
pulsing the target objects within the circulatory vessel with at least one additional pulse of laser energy at a second pulse wavelength; and
obtaining a second photoacoustic pattern comprising at least one additional photoacoustic signal.
5. The method of claim 4 , wherein the second pulse wavelength ranges from 400 nm to 500 nm.
6. The method of claim 1 , further comprising initiating a clot treatment in response to the detection signal, wherein the clot treatment comprises pulsing the clot with a high-intensity laser pulse to ablate the clot.
7. A method for continuous monitoring of a circulatory vessel of a living organism, the method comprising:
pulsing circulating target objects comprising red blood cells and at least one clot within the circulatory vessel with at least one pulse of laser energy at a first pulse wavelength ranging between 400 nm and 2500 nm, wherein the first pulse wavelength induces a photoacoustic signal from the target objects, and wherein the red blood cells are light absorbing and the clots are non-absorbing;
obtaining a photoacoustic pattern induced by the at least one pulse of laser energy, wherein the photoacoustic pattern comprises at least one photoacoustic signal comprising a background photoacoustic signal produced by the red blood cells;
analyzing the photoacoustic pattern to determine the presence of a negative dip in the photoacoustic pattern, wherein the negative dip in the photoacoustic pattern below the background photoacoustic signal indicates the presence of the clot.
8. The method of claim 1 , wherein the negative dip is a sharp reduction in the magnitude of the photoacoustic signals in the photoacoustic pattern.
9. The method of claim 7 , wherein the negative dip is a sharp reduction in the magnitude of the photoacoustic signals in the photoacoustic pattern.