IP Library › Granted Patent US 12,629,345
Granted Patent B2
US 12,629,345 · App. 18/620,289 · Granted May 19, 2026

Methods, compositions, and devices for drug / live cell microarrays

Inventor: Chandrashekhar P. Pathak (Phoenix, AZ)
Assignee: PATHAK HOLDINGS LLC
A61K31/155A61K9/0014A61K9/0021A61K9/0024A61K9/0048A61K9/0051A61K9/06A61K9/1641A61K9/1647A61K9/1658A61K9/5031A61K9/5052A61K31/337A61K31/37A61K31/496A61K31/573A61K31/7036A61K31/727A61K41/0028A61K47/02A61K47/32A61K47/34A61L27/225A61L27/3804A61L27/50A61M5/3298A61M37/0015A61M37/0076A61L27/54A61L2300/442A61L2400/06A61M5/3015A61M2037/0023A61M2037/003A61M2037/0046A61M2037/0053A61M2205/36A61M2205/3606A61M2205/3633A61M2205/3653A61M2207/00C12Y304/21068C12Y304/24069
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,629,345
App. No.
18/620,289
Granted
May 19, 2026
Kind
B2
Abstract

This invention discloses methods and composition to form biodegradable polymer implant arrays in the live tissue. Artificial cavities are created in the live tissue by using laser ablation, oscillating needle, microneedle array and other methods. The cavities are then filled with biodegradable polymer solution. The solvent in the polymer solution is dissipated in the tissue to form a biodegradable polymer implant in artificial cavities. The cavities and implants formed are arranged to form of an array of implants. The biodegradable polymer in the cavity can also be loaded with drug to form biodegradable drug delivery array in the live tissue.

Claims (51)

1 . An implantable microneedle array, comprising:

a plurality of microneedles arranged in an array, wherein each microneedle includes a crosslinked body that is biodegradable and that has a tip and opposite base surface, wherein the crosslinked body is formed by polymerizing a biodegradable macromonomer that has at least two free radically polymerizable groups separated by at least one biodegradable block; and

a backing member coupled to the base surface of each microneedle in the array.

2 . The implantable microneedle array of claim 1 , wherein the plurality of microneedles includes at least 4 microneedles arranged in the array.

3 . The implantable microneedle array of claim 1 , wherein the crosslinked body comprises the macromonomer having non-biodegradable polymeric central block or core linked to a biodegradable polymer with each end crosslinked with another macromonomer, wherein the biodegradable polymer provides biodegradability to the macromonomer.

4 . The implantable microneedle array of claim 3 , wherein:

the non-biodegradable polymeric central block or core includes polyethylene glycol; and

the biodegradable polymer includes polylactide, polycaprolactone, polyglycolate, polytrimethylene carbonate, or combinations thereof.

5 . The implantable microneedle array of claim 1 , wherein the crosslinked body comprises a polyethylene glycol or a polyethylene oxide, or derivative thereof.

6 . The implantable microneedle array of claim 1 , wherein the crosslinked body is formed by a precursor having a macromonomer with at least two free radical reactive groups.

7 . The implantable microneedle array of claim 1 , wherein the backing member includes nylon, cotton, woven textile material, metal, or ceramic.

8 . The implantable microneedle array of claim 1 , wherein crosslinked body includes a filler material.

9 . The implantable microneedle array of claim 8 , wherein the filler material is water soluble and has a solubility greater than 1 gram per 100 grams of solvent.

10 . The implantable microneedle array of claim 8 , wherein the filler material is a natural or synthetic biodegradable polymer, inorganic solid, organic solid, biodegradable polymeric microspheres, biodegradable polymeric microspheres containing a therapeutic agent, sugars, inorganic salt, organic salt, or combinations thereof.

11 . The implant microneedle array of claim 1 , wherein each microneedle has at least one of:

an average cross-dimension ranging from about 1 micron to 3,500 microns;

a height of 5 microns to 5,000 microns;

distance between each microneedle ranging from about 1 micron to 10,000 microns;

volume of each microneedle ranging from 1×10E-12 mL to 0.05 mL; or

a number of microneedles ranges from 4 microneedles to 6,000 microneedles.

12 . The implantable microneedle array of claim 1 , wherein the backing material is:

a same material as the crosslinked body of the microneedles; or

a different material from the crosslinked body of the microneedles.

13 . The implantable microneedle array of claim 1 , further comprising a visualization agent in the crosslinked body.

14 . The implantable microneedle array of claim 1 , further comprising a therapeutic agent in the crosslinked body.

15 . The implantable microneedle array of claim 10 , wherein the filler includes the inorganic salt or organic salt, which varies from 5% to 500% relative to weight of macromonomer.

16 . The implantable microneedle array of claim 10 , wherein the filler includes sodium iodide, sodium bicarbonate, citric acid or its salts, magnesium chloride, calcium sulphate, calcium carbonate, maltose, galactose, sucrose, mannitol, trehalose, dextrin, xylitol, hyaluronic acid or derivatives thereof, dextran, polyvinyl pyrrolidone, polyvinyl alcohol, celluloses, cellulose derivatives, carboxymethyl cellulose, carboxymethylpropyl cellulose, cellulose sulphate, gelatin, collagen, fibrinogen, or combinations thereof.

17 . The implantable microneedle array of claim 10 , wherein the filler includes a synthetic polymer.

18 . The implantable microneedle array of claim 17 , wherein the synthetic polymer is selected from poly(dI-lactide-co-glycolide, 50:50), poly(dI-lactide-co-glycolide, 65:35), poly(dI-lactide-co-glycolide, 75:25), poly(dI-lactide-co-glycolide, 85:15), poly(dI-lactide-co-ε-caprolactone, 25:75), poly(dI-lactide-co-ε-caprolactone, 80:20), polylactic acid, polyglycolic acid, polycaprolactone, polytrimethylene carbonate, polydioxanone, PEG-co-polylactone copolymers, poly(glycerol sebacate), poly(hexamethylene carbonate), tyrosine-derived polycarbonates, polyarylates, and combinations thereof.

19 . The implantable microneedle array of claim 1 , wherein the crosslinked body includes a crosslinked polymer that degrades by hydrolysis mechanism or by enzymatic degradation mechanism.

20 . A method of forming a microneedle array, comprising:

providing a mold having a plurality of cavities shaped as microneedles arranged in an array;

introducing a precursor as a neat liquid or solution into each cavity of the mold, wherein the precursor solution includes a free radical initiator and a macromonomer;

exposing the precursor solution to a stimulus to initiate polymerization of the macromonomer to form a crosslinked body shaped as the microneedles, wherein each microneedle includes a crosslinked body that is biodegradable and that has a tip and opposite base surface;

attaching a backing member to the base surface of each microneedle in the array; and

withdrawing the microneedles from the mold, wherein the microneedles are arranged in the array and include the backing member coupled thereto.

21 . The method of claim 20 , wherein the wherein the precursor solution includes a thermal initiator or a photoinitiator and the macromonomer.

22 . The method of claim 20 , comprising:

providing a macromonomer having a non-biodegradable polymer linked to a biodegradable polymer having each end with a reactive group; and

polymerizing the reactive groups to crosslink each macromonomer with another macromonomer at each of the biodegradable polymer to form a crosslinked body; and

drying the crosslinked body.

23 . The method of claim 20 , wherein the precursor is a neat liquid or macromonomer solution in aqueous solution or in organic solvent.

24 . The method of claim 20 , wherein the stimulus is UV light or visible light, gamma radiation, or electron beam.

25 . The method of claim 20 , further comprising introducing a visualization agent into the crosslinked body.

26 . The method of claim 20 , further comprising introducing a therapeutic agent into the crosslinked body.

27 . The method of claim 25 , wherein a therapeutic agent is microencapsulated in a biodegradable polymer microparticle or microsphere.

28 . The method of claim 20 , the crosslinked body further comprising a filler, wherein the filler includes an inorganic salt or organic salt, which varies from 5% to 500% relative to weight of macromonomer.

29 . The method of claim 20 , the crosslinked body further comprising a filler, wherein the filler includes sodium iodide, sodium bicarbonate, citric acid or its salts, magnesium chloride, calcium sulphate, calcium carbonate, maltose, galactose, sucrose, mannitol, trehalose, dextrin, xylitol, hyaluronic acid or derivatives thereof, dextran, polyvinyl pyrrolidone, polyvinyl alcohol, celluloses, cellulose derivatives, carboxymethyl cellulose, carboxymethylpropyl cellulose, cellulose sulphate, gelatin, collagen, fibrinogen, or combinations thereof.

30 . The method of claim 20 , the crosslinked body further comprising a filler, wherein the filler includes a synthetic polymer.

31 . The method of claim 30 , wherein the synthetic polymer is selected from poly(dI-lactide-co-glycolide, 50:50), poly(dI-lactide-co-glycolide, 65:35), poly(dI-lactide-co-glycolide, 75:25), poly(dI-lactide-co-glycolide, 85:15), poly(dI-lactide-co-ε-caprolactone, 25:75), poly(dI-lactide-co-ε-caprolactone, 80:20), polylactic acid, polyglycolic acid, polycaprolactone, polytrimethylene carbonate, polydioxanone, PEG-co-polylactone copolymers, poly(glycerol sebacate), poly(hexamethylene carbonate), tyrosine-derived polycarbonates, polyarylates, and combinations thereof.

32 . The method of claim 20 , wherein the crosslinked body includes a crosslinked polymer that degrades by hydrolysis mechanism or by enzymatic degradation mechanism.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 28, 2024
From: PATHAK, CHANDRASHEKHAR P.
To: PATHAK HOLDINGS LLC
Reel/Frame 066938/0773 →
Continuity (20)
Continuation In Part 17503063 · Oct 15, 2021
Continuation In Part 17324738 · May 19, 2021
Continuation 16818944 · Mar 13, 2020
Continuation 16156949 · Oct 10, 2018
Continuation In Part 15704792 · Sep 14, 2017
Continuation In Part PCTUS2017042798 · Jul 19, 2017
Continuation 15099456 · Apr 14, 2016
Continuation In Part 14736007 · Jun 10, 2015
Division 14209827 · Mar 13, 2014
Provisional Application 63143884 · Jan 31, 2021
Provisional Application 63093271 · Oct 18, 2020
Provisional Application 62515504 · Jun 5, 2017
Provisional Application 62466291 · Mar 2, 2017
Provisional Application 62378662 · Aug 23, 2016
Provisional Application 62363839 · Jul 19, 2016
Provisional Application 61946825 · Mar 2, 2014
Provisional Application 61934795 · Feb 2, 2014
Provisional Application 61820449 · May 7, 2013
Provisional Application 61786215 · Mar 14, 2013
Related Publication 20240252452A1 · Aug 1, 2024
References Cited (92)
US 4935008A · Lewis et al. · 1990 [cited by applicant]
US 5410016A · Hubbell et al. · 1995 [cited by applicant]
US 5411554A · Scopelianos et al. · 1995 [cited by applicant]
US 5529914A · Hubbell et al. · 1996 [cited by applicant]
US 5567435A · Hubbell et al. · 1996 [cited by applicant]
US 5573934A · Hubbell et al. · 1996 [cited by applicant]
US 5626863A · Hubbell et al. · 1997 [cited by applicant]
US 5631015A · Bezwada et al. · 1997 [cited by applicant]
US 5801033A · Hubbell et al. · 1998 [cited by applicant]
US 5874500A · Rhee et al. · 1999 [cited by applicant]
US 5990194A · Dunn et al. · 1999 [cited by applicant]
US 6004573A · Rathi et al. · 1999 [cited by applicant]
US 6107102A · Ferrari · 2000 [cited by applicant]
US 6201065B1 · Pathak et al. · 2001 [cited by applicant]
US 6306922B1 · Hubbell et al. · 2001 [cited by applicant]
US 6323278B2 · Rhee et al. · 2001 [cited by applicant]
US 6352667B1 · English · 2002 [cited by applicant]
US 6387977B1 · Sawhney et al. · 2002 [cited by applicant]
US 6534591B2 · Rhee et al. · 2003 [cited by applicant]
US 6566406B1 · Pathak et al. · 2003 [cited by applicant]
US 6599627B2 · Yeo et al. · 2003 [cited by applicant]
US 6887974B2 · Pathak · 2005 [cited by applicant]
US 7009034B2 · Pathak · 2006 [cited by applicant]
US 7592418B2 · Pathak et al. · 2009 [cited by applicant]
US 7740877B2 · Kim et al. · 2010 [cited by applicant]
US 7790141B2 · Pathak et al. · 2010 [cited by applicant]
US 7919112B2 · Pathak et al. · 2011 [cited by applicant]
US 8067031B2 · Daniloff et al. · 2011 [cited by applicant]
US 8409606B2 · Sawhney et al. · 2013 [cited by applicant]
US 8506856B2 · Chang et al. · 2013 [cited by applicant]
US 8557535B2 · Pathak · 2013 [cited by applicant]
US 8821945B2 · Imran et al. · 2014 [cited by applicant]
US 9023379B2 · Pathak et al. · 2015 [cited by applicant]
US 9072678B2 · Pathak · 2015 [cited by applicant]
US 9345777B2 · Pathak · 2016 [cited by applicant]
US 9498557B2 · Pathak et al. · 2016 [cited by applicant]
US 9789073B2 · Pathak · 2017 [cited by applicant]
US 10123980B2 · Pathak · 2018 [cited by applicant]
US 10543182B2 · Pathak · 2020 [cited by applicant]
US 10624865B2 · Pathak · 2020 [cited by applicant]
US 20010047153A1 · Trocki et al. · 2001 [cited by applicant]
US 20050054969A1 · Hoff et al. · 2005 [cited by applicant]
US 20050069572A1 · Williams et al. · 2005 [cited by applicant]
US 20050222565A1 · Manstein et al. · 2005 [cited by applicant]
US 20060275310A1 · Dwarakanath et al. · 2006 [cited by applicant]
US 20070055179A1 · Deem et al. · 2007 [cited by applicant]
US 20080015522A1 · Yeshurun et al. · 2008 [cited by applicant]
US 20090082721A1 · Utley et al. · 2009 [cited by applicant]
US 20100049178A1 · Deem et al. · 2010 [cited by applicant]
US 20120177612A1 · Shyu et al. · 2012 [cited by applicant]
US 20140147510A1 · Lahann et al. · 2014 [cited by applicant]
US 20140256617A1 · Overstreet et al. · 2014 [cited by applicant]
US 20160166504A1 · Jarrett et al. · 2016 [cited by applicant]
US 20190046479A1 · Pathak · 2019 [cited by applicant]
US 20200230081A1 · Pathak · 2020 [cited by applicant]
JP 2000024014A · 2000 [cited by applicant]
JP 2001046497A · 2001 [cited by applicant]
WO 2008066657A2 · 2008 [cited by applicant]
WO 2010065957A2 · 2010 [cited by applicant]
WO 2011089435A2 · 2011 [cited by applicant]
WO 2014160387A2 · 2014 [cited by applicant]
WO 2018017674A1 · 2018 [cited by applicant]
Y. Lu et al.; “Microparticles Produced by the Hydrogel Template Method for Sustained Drug Delivery”; Int. J Pharm.; vol. 461(0), p. 258-269 (2014). [cited by applicant]
M. Rizwan et al.; “pH Sensitive Hydrogels in Drug Delivery: Brief History, Properties, Swelling, and Release Mechanism, Material Selection and Applications”; Polymers, vol. 9, p. 137 (2017). [cited by applicant]
E. C. Opara et al.; “Microencapsulation of Pancreatic Islets for Use in a Bioartificial Pancreas”; Methods Mol Biol., vol. 1001, p. 261-266 (2013). [cited by applicant]
S.C. Byalekere et al.; “Evaluation of Microneedling Fractional Radiofrequency Device for Treatment of Acne Scars”; . 1 Cutan. Aesthet Surg.; vol. 7(2), p. 93-97 (2014). [cited by applicant]
Bauman et al.; “An injectable drug delivery platform for sustained combination therapy”; Journal of Controlled Release, vol. 138(3); pp. 205-213 (May 9, 2009); 9 pages. [cited by applicant]
Hickerson et al.; “Gene Silencing in Skin After Deposition of Self-Delivery siRNA With a Motorized Microneedle Array Device”; Molecular Therapy—Nucleic Acids (2013) v2, e129; doi:10.1038/mtna.2013.56; 7 pages. [cited by applicant]
International Search Report and Written Opinion issued in App No. PCT/US2014/026467 on Sep. 26, 2014; 19 pages. [cited by applicant]
B. Bediz et al.; “Dissolvable Microneedle Arrays for Intradermal Delivery of Biologics: Fabrication and Application”; Pharm Res.; vol. 31(1), p. 117-135 (2014). [cited by applicant]
B.M. Torrisi et al.; “Pocketed microneedles for rapid delivery of a liquid-state botulinum toxin A formulation into human skin”; J Control Release.; vol. 165(2), 146-152 (2013). [cited by applicant]
Xianhua et al.; “Research Progress in Magnesium Alloys as Functional Materials”; Rare Metal Materials and Engineering; vol. 45(9), p. 2269-2274 (2016). [cited by applicant]
X. Gu et al.; “Biodegradable, elastomeric coatings with controlled anti-proliferative agent release for magnesium-based cardiovascular stents”; Colloids and Surfaces B: Bio-interfaces; vol. 144, p. 170-179 (2016). [cited by applicant]
International Search Report and Written Opinion issued in app No. PCT/US2017/042798 on Sep. 27, 2017; 11 pages. [cited by applicant]
E. Larraneta et al.; “Microneedle arrays as transdermal and intradermal drug delivery systems: Materials science, manufacture and commercial development”; Materials Science and Engineering R; vol. 104, p. 1-32 (2016). [cited by applicant]
J.Brandrup et al.; Polymer Handbook:; John Wiley & Sons (1999). [cited by applicant]
G. Orive et al.; Application of cell encapsulation for Controlled Delivery of Biological Therapeutics: Advanced Drug Delivery Reviews; 2014; 12 pages. [cited by applicant]
D.D. Perrin et al.; “Purification of Laboratory Chemicals”; Pergamon Press, Oxford (1980); 544 pages. [cited by applicant]
J. Seitz et al.; “Recent Advances in Biodegradable Metals for Medical Sutures: A Critical Review”; Adv. Healthcare Mater.; vol. 4, p. 1915-1936 (2015). [cited by applicant]
A.B. Nair et al.; “Alteration of the diffusional barrier property of the nail leads to greater terbinafine drug loading and permeation”; International Journal of Pharmaceutics, vol. 375, p. 22-27 (2009). [cited by applicant]
E. HH. Taudorf et al.; “Fractional Ablative Erbium YAG Laser: Histological Characterization of Relationships Between Laser Settings and Micropore Dimensions”; Lasers in Surgery and Medicine; vol. 46, pp. 281-289 (2014). [cited by applicant]
L. Y. Yeo et al.; “Microfluidic Devices for Bio-applications”; Small, vol. 7(1), p. 12-48 (2011). [cited by applicant]
R. G. Willaert et al.; “Microfluidic Bioreactors for Cellular Microarrays”; Fermentation, vol. 1, p. 38-78 (2015). [cited by applicant]
T.-M. Tuan-Mahmood et al.; “Microneedles for intradermal and transdermal delivery”; European Journal of Pharmaceutical Sciences; vol. 50, p. 623-637(2013). [cited by applicant]
M.R. Prausnitz et al., “Microneedles for transdermal drug delivery”; Advanced Drug Delivery Reviews; vol. 56, p. 581-587 (2004). [cited by applicant]
Musgrave et al.; “Contact Lens Materials: A Materials Science Perspective”; Whitepaper; published in MDPI; Jan. 14, 2019; doi:10.3390/ma12020261; 36 pages. [cited by applicant]
Yadav et al; “Fabrication of 3D polymeric photonic arrays and related applications”; Whitepaper; published in Materials Today Chemistry; Nov. 27, 2019; https://doi.org/10.1016/j.mtchem.2019.100208; 15 pages. [cited by applicant]
Helminger et al.; “Synthesis and Characterization of Gelatin-Based Magnetic Hydrogels”; Whitepaper; published in Advanced Functional Materials; 2014, 24; doi:10.102/adfm.201303547; 10 pages. [cited by applicant]
Saha et al.; “Recent developments in multilayerd polymeric particles—from fabrication techniques to therapeutic formulations”; published in Journal of Materials Chemistry B; Apr. 2, 2015; doi:10.1039/c5tb00086f; 14 page… [cited by applicant]
Mntiloiu et al.; “Organogels and their use in drug delivery—A review”; Whitepaper; published in Joural of Controlled Release, vol. 125; Nov. 7, 2007; doi:10.1016/j.jconrel.2007.09.014; 14 pages. [cited by applicant]
Wischke et al.; “Principles of Encapsulating Hydrophobic drugs in PLA/PLGA microparticles”; published in International Journal of Phamaceutics, vol. 364; May 7, 2008; doi:10.1016/j.ijpharm.2008.04.042; 30 pages. [cited by applicant]
Klouda et al.; “Thermoresponsive hydrogels in biomedical applications—a review”; published in National Institutes of Health—Public Access Author Manuscript; Jan. 2008, vol. 68(1); doi:10.1016/j.ejpb.2007.02.025; 22 page… [cited by applicant]