Claims
- 1) A scanning system, comprising:
one or more optical elements constructed and arranged to direct a excitation beam at a probe array; one or more detectors constructed and arranged to receive reflected intensity data responsive to the excitation beam, wherein the reflected intensity data is responsive, at least in part, to a focusing distance between an optical element and the probe array; a transport frame constructed and arranged to adjust the focusing distance in a first direction with respect to the probe array; an auto-focuser constructed and arranged to determine a best plane of focus based, at least in part, upon one or more characteristics of the reflected intensity data as received at two or more focusing distances; and wherein:
the one or more detectors are further constructed and arranged to receive a plurality of pixel intensity values based, at least in part, upon detected emissions from a plurality of probe features disposed on the probe array at the best plane of focus; and the system further comprises an image generator constructed and arranged to associate each of the pixel intensity values with one or more image pixel positions of a probe array based, at least in part, upon one or more position correction values.
- 2) A method, comprising the acts of:
receiving a plurality of pixel intensity values based, at least in part, upon detected emissions from a plurality of probe features disposed on a probe array; and associating each of the pixel intensity values with one or more image pixel positions of a probe array image based, at least in part, upon one or more position correction values.
- 3) The method of claim 2, wherein:
the probe array image has a position error of plus or minus one pixel or less.
- 4) The method of claim 2, wherein:
the emissions are responsive, at least in part, to an excitation beam.
- 5) The method of claim 4, wherein:
the emissions arise from excitation by the excitation beam of one or more fluorescent molecules.
- 6) The method of claim 4, wherein:
the excitation beam comprises a laser beam.
- 7) The method of claim 6, wherein:
the laser includes a solid state, diode pumped, frequency doubled Nd: YAG laser.
- 8) The method of claim 4, wherein:
the act of receiving the plurality of pixel intensity values is accomplished in a single pass of the excitation beam over a number of contiguous probe features of the plurality of probe features.
- 9) The method of claim 8, wherein:
the contiguous features comprise a scanning line.
- 10) The method of claim 8, wherein:
the contiguous features are immediately adjacent features or are separated by non-feature areas of the probe array.
- 11) The method of claim 2, wherein:
each of the plurality of pixel intensity values is associated with a pixel having a dimension in an x-axis with respect to the probe array of approximately 2.5 μm.
- 12) The method of claim 11, wherein:
the dimension in the x-axis is between about 1.5 μm and about 3.0 μm.
- 13) The method of claim 2, wherein:
each of the plurality of probe features has a dimension in an x-axis with respect to the probe array of approximately 18 μm.
- 14) The method of claim 13, wherein:
the dimension on the x-axis is between about 14 μm and about 22 μm.
- 15) The method of claim 2, wherein:
each of the plurality of probe features has a dimension in an x-axis with respect to the probe array of approximately 10 μm.
- 16) The method of claim 15, wherein:
the dimension on the x-axis is between about 6 μm and about 14 μm.
- 17) The method of claim 2, wherein:
each probe feature is associated with one or more of the plurality of pixel intensity values.
- 18) The method of claim 2, wherein:
the biological probe array includes a synthesized array or a spotted array.
- 19) The method of claim 2, wherein:
the one or more position correction values each includes a horizontal linearity correction value, a vertical linearity correction value, or both.
- 20) The method of claim 2, wherein:
the act of associating each of the plurality of pixel intensity values with one or more image pixel positions is accomplished by adjusting a received pixel position associated with each of the plurality of pixel intensity values by a number of pixels determined by the one or more position correction values.
- 21) The method of claim 20, wherein:
the number of pixels includes a fractional value.
- 22) The method of claim 2, wherein:
the one or more position correction values are based, at least in part, upon one or more reference positions provided by one or more calibration features.
- 23) The method of claim 22, wherein:
the one or more calibration features comprises an array of features oriented in a horizontal pattern, vertical pattern, or both.
- 24) The method of claim 2, further comprising the acts of:
translating the probe array a distance along a y-axis with respect to the probe array; and repeating the steps of receiving, associating, and translating until the probe array image includes pixel intensity values corresponding to each of the plurality of probes disposed on the probe array.
- 25) The method of claim 24, wherein:
the distance is based, at least in part, on a size of a pixel in the y-axis.
- 26) The method of claim 25, wherein:
the distance is approximately 2.5 μm.
- 27) The method of claim 25, wherein:
the distance is between about 1.5 μm and about 3.0 μm.
- 28) A scanning system, comprising:
one or more detectors constructed and arranged to receive a plurality of pixel intensity values based, at least in part, upon detected emissions from a plurality of probe features disposed on a probe array; and a corrected image generator constructed and arranged to associate each of the pixel intensity values with one or more image pixel positions of a probe array image based, at least in part, upon one or more position correction values
- 29) The scanning system of claim 28, wherein:
the probe array image has a position error of plus or minus one pixel or less.
- 30) The scanning system of claim 28, wherein:
the emissions are responsive, at least in part, to an excitation beam.
- 31) The scanning system of claim 30, wherein:
the emissions arise from excitation by the excitation beam of one or more fluorescent molecules.
- 32) The scanning system of claim 30, wherein:
the excitation beam comprises a laser beam.
- 33) The scanning system of claim 32, wherein:
the laser includes a solid state, diode pumped, frequency doubled Nd: YAG laser.
- 34) The scanning system of claim 30, wherein:
the one or more detectors accomplishes the receiving of the plurality of pixel intensity values in a single pass of the excitation beam over a number of contiguous probe features of the plurality of probe features.
- 35) The scanning system of claim 34, wherein:
the contiguous features comprise a scanning line.
- 36) The scanning system of claim 34, wherein:
the contiguous features are immediately adjacent features or are separated by non-feature areas of the probe array.
- 37) The scanning system of claim 28, wherein:
each of the plurality of pixel intensity values is associated with a pixel having a dimension in an x-axis with respect to the probe array of approximately 2.5 μm.
- 38) The scanning system of claim 37, wherein:
the dimension in the x-axis is between about 1.5 μm and about 3.0 μm.
- 39) The scanning system of claim 28, wherein:
each of the plurality of probe features has a dimension in an x-axis with respect to the probe array of approximately 18 μm.
- 40) The scanning system of claim 39, wherein:
the dimension on the x-axis is between about 14 μm and about 22 μm.
- 41) The scanning system of claim 28, wherein:
each of the plurality of probe features has a dimension in an x-axis with respect to the probe array of approximately 10 μm probe feature.
- 42) The scanning system of claim 41, wherein:
the dimension on the x-axis is between about 6 μm and about 14 μm.
- 43) The scanning system of claim 28, wherein:
each probe feature is associated with one or more of the plurality of pixel intensity values.
- 44) The scanning system of claim 28, wherein:
the biological probe array includes a synthesized array or a spotted array.
- 45) The scanning system of claim 28, wherein:
the one or more position correction values each includes a horizontal linearity correction value, a vertical linearity correction value, or both.
- 46) The scanning system of claim 28, wherein:
the corrected image generator accomplishes the association of each of the plurality of pixel intensity values with one or more image pixel positions by adjusting a received pixel position associated with each of the plurality of pixel intensity values by a number of pixels determined by the one or more position correction values.
- 47) The scanning system of claim 46, wherein:
the number of pixels includes a fractional value.
- 48) The scanning system of claim 28, wherein:
the one or more position correction values are based, at least in part, upon one or more reference positions provided by one or more calibration features.
- 49) The scanning system of claim 48, wherein:
the one or more calibration features comprises an array of features oriented in a horizontal pattern, vertical pattern, or both.
- 50) The scanning system of claim 28, further comprising:
a transport frame constructed and arranged to translate the probe array a distance along a y-axis with respect to the probe array; and a comparator constructed and arranged to determine a completed probe array image based, at least in part, upon one or more received pixel intensity values corresponding to each of the plurality of probes disposed on the probe array.
- 51) The scanning system of claim 50, wherein:
the distance is based, at least in part, on a size of a pixel in the y-axis.
- 52) The scanning system of claim 51, wherein:
the distance is approximately 2.5 μm.
- 53) The scanning system of claim 51, wherein:
the distance is between about 1.5 μm and about 3.0 μm.
- 54) The scanning system of claim 50, wherein:
the transport frame is further constructed and arranged to provide a solid hinge flexure.
- 55) The scanning system of claim 54, wherein:
the solid hinge flexure provides movement in the Z-axis.
- 56) The scanning system of claim 50, wherein:
the solid hinge flexure has no friction or stiction.
- 57) A method, comprising the acts of,
directing an excitation beam at a probe array; receiving reflected intensity data responsive to the excitation beam, wherein the intensity data is responsive, at least in part, to a focusing distance between an optical element and the probe array; adjusting the focusing distance in a first direction with respect to the probe array; and repeating the steps of receiving and adjusting for a number of iterations; determining a best plane of focus based, at least in part, upon one or more characteristics of the reflected intensity data at the adjusted focusing distances.
- 58) The method of claim 57, wherein:
the first direction is away from or toward the probe array.
- 59) The method of claim 57, wherein:
the number of iterations is predetermined.
- 60) The method of claim 59, wherein:
the predetermined number of iterations is based, at least in part, on an anticipated error associated with the reflected intensity data.
- 61) The method of claim 60, wherein:
the anticipated error associated with the reflected intensity data is inversely related to the predetermined number of iterations.
- 62) The method of claim 57, wherein:
the reflected intensity data are responsive to reflection of the excitation beam from one or more focus features.
- 63) The method of claim 62, wherein:
the reflected intensity data correspond to one or more reflection spots.
- 64) The method of claim 63, wherein:
the best plane of focus is based, at least in part, upon associating the one or more spots with one or more characteristics of a beam waist.
- 65) The method of claim 62, wherein:
the one or more focus features are positioned outside an active area and the one or more probe features are positioned inside the active area.
- 66) The method of claim 62, wherein:
the one or more focus features includes a chrome border.
- 67) The method of claim 57, wherein:
the one or more characteristics includes a slope value.
- 68) The method of claim 67, wherein:
the best plane of focus is based, at least in part, upon a maximum value of the slope value.
- 69) A scanning system, comprising,
one or more optical elements constructed and arranged to direct an excitation beam at a probe array; one or more detectors constructed and arranged to receive reflected intensity data responsive to the excitation beam, wherein the intensity data is determined, at least in part, by a focusing distance between an optical element and the probe array; an auto-focuser constructed and arranged to determine a best plane of focus based, at least in part, upon one or more characteristics of the reflected intensity data as received at two or more focusing distances.
- 70) The scanning system of claim 69, wherein:
the first direction is away from or toward the probe array.
- 71) The scanning system of claim 69, wherein:
the number of iterations is predetermined.
- 72) The scanning system of claim 71, wherein:
the predetermined number of iterations is based, at least in part, on an anticipated error associated with the reflected intensity data.
- 73) The scanning system of claim 72, wherein:
the anticipated error associated with the reflected intensity data is inversely related to the predetermined number of iterations.
- 74) The scanning system of claim 69, wherein:
the reflected intensity data are responsive to reflection of the excitation beam from one or more focus features.
- 75) The scanning system of claim 74, wherein:
the reflected intensity data correspond to one or more reflection spots.
- 76) The scanning system of claim 75, wherein:
the best plane of focus is based, at least in part, upon associating the one or more spots with one or more characteristics of a beam waist.
- 77) The scanning system of claim 74, wherein:
the one or more focus features are positioned outside an active area, and the one or more probe features are positioned inside the active area.
- 78) The scanning system of claim 74, wherein:
the one or more focus features includes a chrome border.
- 79) The method of claim 69, wherein:
the one or more characteristics includes a slope value.
- 80) The method of claim 79, wherein:
the best plane of focus is based, at least in part, upon a maximum value of the slope value.
- 81) A method, comprising the acts of:
storing one or more probe arrays in a magazine, wherein each of the plurality of probe arrays is housed in a probe array cartridge; reversibly transporting a first probe array cartridge between the magazine and a scanning system; and advancing the magazine by one or more positions to a second probe array cartridge.
- 82) The method of claim 81, wherein;
the act of storing includes providing a temperature and humidity controlled environment.
- 83) The method of claim 81, wherein:
the temperature and humidity controlled environment includes maintaining the probe arrays at a temperature for maintaining biological integrity.
- 84) The method of claim 83, wherein:
the temperature for maintaining biological integrity includes a range between about 2° C. and 15° C.
- 85) The method of claim 81, wherein:
each of the one or more probe arrays are arranged in a vertical orientation.
- 86) The method of claim 81, wherein:
the magazine holds a at least 48 of the one or more probe arrays.
- 87) The method of claim 81, wherein:
the magazine is substantially circular.
- 88) The method of claim 81, wherein:
the magazine holds a at least 100 of the one or more probe arrays.
- 89) The method of claim 81, further comprising the act of:
reducing condensation on at least one of the one or more probe array cartridges by warming.
- 90) The method of claim 81, wherein:
the act of transporting includes one or more elements that reversibly engage and disengage the probe array cartridge.
- 91) The method of claim 90, wherein:
the one or more elements engage one or more fiducial features.
- 92) A scanning system, comprising:
a cooled storage chamber constructed and arranged to store one or more probe arrays in a magazine, wherein each of the plurality of probe arrays is housed in a probe array cartridge; a cartridge transport assembly constructed and arranged to reversibly transport a first probe array cartridge between the magazine and a scanning system; and a linear motor constructed and arranged to advance the magazine by one or more positions to a second probe array cartridge.
- 93) The scanning system of claim 92, wherein;
the cooled storage chamber includes a temperature and humidity controlled environment.
- 94) The scanning system of claim 93, wherein:
the temperature and humidity controlled environment includes a temperature for maintaining biological integrity.
- 95) The scanning system of claim 94, wherein:
the temperature for maintaining biological integrity includes a range between about 2° C. and 15° C.
- 96) The scanning system of claim 92, wherein:
each of the one or more probe arrays are arranged in a vertical orientation.
- 97) The scanning system of claim 92, wherein:
the magazine holds a at least 48 of the one or more probe arrays.
- 98) The scanning system of claim 92, wherein:
the magazine is substantially circular.
- 99) The scanning system of claim 92, wherein:
the magazine holds a at least 100 of the one or more probe arrays.
- 100) The scanning system of claim 92, further comprising:
a warm thermal chamber constructed and arranged to reduce condensation on at least one of the one or more probe array cartridges by warming.
- 101) The scanning system of claim 92, wherein:
the cartridge transport assembly includes one or more elements that reversibly engage and disengage the probe array cartridge.
- 102) The scanning system of claim 101, wherein:
the one or more elements engage one or more fiducial features.
- 103) A scanning system, comprising:
a service application constructed and arranged to perform one or more calibration methods, wherein the service application includes an interface to a plurality of elements of the scanning system.
- 104) The scanning system of claim 103, wherein:
the one or more calibration methods includes pitch calibration, roll calibration, and arc radius calibration.
- 105) The scanning system of claim 103, wherein:
the plurality of elements includes hardware elements.
- 106) The scanning system of claim 103, wherein:
the service application is further constructed and arranged to run one or more diagnostic tests.
- 107) The scanning system of claim 103, wherein:
the service application is further constructed and arranged to upload and download one or more software or firmware applications.
RELATED APPLICATIONS
[0001] The present application claims priority from U.S. Provisional Patent Application Serial No. 60/364,731, entitled “SYSTEM, METHOD, AND PRODUCT FOR SCANNING OF BIOLOGICAL MATERIALS,” filed Mar. 15, 2002; U.S. Provisional Patent Application Serial No. 60/396,457, titled “HIGH-THROUGHPUT MICROARRAY SCANNING SYSTEM AND METHOD”, filed Jul. 17, 2002; and U.S. Provisional Patent Application Serial No. 60/435,178, titled “System, Method and Product for Scanning of Biological Materials”, filed Dec. 19, 2002, each of which is hereby incorporated by reference herein in it's entirety for all purposes.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60364731 |
Mar 2002 |
US |
|
60396457 |
Jul 2002 |
US |
|
60435178 |
Dec 2002 |
US |