Claims
- 1. A microarray comprising:
a plurality of continuous detection blocks wherein each detection block contains the same set of features containing nucleic acid probes of interest constructed on a microarray slide, the set of features in each detection block being identically arranged.
- 2. The microarray of claim 1 further comprising positive control features in each detection block at the corners thereof for identifying a corner point where four adjacent detection blocks connect.
- 3. The microarray of claim 1, wherein the probes are polynucleotides.
- 4. The microarray of claim 1, wherein the probes are polypeptides.
- 5. The microarray of claim 1, further comprising:
a plurality of wells formed by physical barriers connected to the microarray slide wherein the size of each well is larger than one detection block in all dimensions, and the wells are not in fluid communication with one another during the hybridization process, the plurality of wells placed on the microarray without alignment with features on the microarray.
- 6. The microarray of claim 5, wherein the wells are of the same shape.
- 7. The microarray of claim 5, wherein the shape of the wells is selected from a rectangle, a hexagon and a circle.
- 8. The microarray of claim 5, wherein the physical barriers can be separated from the microarray slide.
- 9. The microarray of claim 6, wherein a plurality of detection blocks is at least 4 blocks.
- 10. The microarray of claim 5, wherein a plurality of detection blocks is at least 10 blocks.
- 12. A method for building the microarray of claim 1 comprising the steps of:
selecting a detection block of features containing probes of interest; positioning one detection block in one region of the microarray slide; and positioning another detection block of features in another region of the microarray slide.
- 13. A method for building the microarray of claim 5 comprising the steps of:
selecting detection block of features containing probes of interest; providing a microarray slide that is pre-patterned with wells formed by physical barriers wherein each well contains an area sufficiently large to accommodate the detection block; positioning detection block in one region of the microarray slide; and positioning another detection block in another region of the microarray slide.
- 14. A method of conducting multiple hybridization experiments in parallel on a single microarray, the method comprising the steps of
providing a microarray which has a plurality of detection blocks, each detection block having a plurality of similar features each of the features having a set of defined probes in them; physically placing a set of wells on the microarray without aligning the wells to the detection blocks, the wells each being larger in area than a detection block; placing different samples in different of the wells; performing a hybridization experiment; obtaining the data from the hybridization experiment; from the data from the hybridization experiment, determining where the corner of a detection block from the data for a well is, and combining the data from features near that corner to reconstruct the data from an entire detection block.
- 15. The method of claim 14 wherein each detection block includes control features adjacent the corners thereof to assist in locating the corner of each block.
- 16. A method for running a plurality of hybridization reactions for a plurality of samples on a single microarray, the method comprising the steps of:
providing a microarray according to claim 6;hybridizing one sample to probes in one detection block; and hybridizing another sample to probes in another detection block.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority from U.S. provisional patent application No. 60/383,559 filed May 24, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60383559 |
May 2002 |
US |