George C Eckert Ii
Examiner (ID: 117)
Most Active Art Unit | 2815 |
Art Unit(s) | 2815 |
Total Applications | 416 |
Issued Applications | 363 |
Pending Applications | 8 |
Abandoned Applications | 45 |
Applications
Application number | Title of the application | Filing Date | Status |
---|---|---|---|
Array
(
[id] => 15931175
[patent_doc_number] => 20200157221
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2020-05-21
[patent_title] => ONCOLYTIC VIRAL DELIVERY OF THERAPEUTIC POLYPEPTIDES
[patent_app_type] => utility
[patent_app_number] => 16/775164
[patent_app_country] => US
[patent_app_date] => 2020-01-28
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 39331
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -9
[patent_words_short_claim] => 86
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16775164
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/775164 | Oncolytic viral delivery of therapeutic polypeptides | Jan 27, 2020 | Issued |
Array
(
[id] => 16312662
[patent_doc_number] => 20200291400
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2020-09-17
[patent_title] => MicroRNA Compounds and Methods for Modulating MIR-21 Activity
[patent_app_type] => utility
[patent_app_number] => 16/751402
[patent_app_country] => US
[patent_app_date] => 2020-01-24
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 35519
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -19
[patent_words_short_claim] => 2
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16751402
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/751402 | MicroRNA Compounds and Methods for Modulating MIR-21 Activity | Jan 23, 2020 | Abandoned |
Array
(
[id] => 16073061
[patent_doc_number] => 20200190517
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2020-06-18
[patent_title] => ORGANIC COMPOSITIONS TO TREAT EPAS1-RELATED DISEASES
[patent_app_type] => utility
[patent_app_number] => 16/747729
[patent_app_country] => US
[patent_app_date] => 2020-01-21
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 51803
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -14
[patent_words_short_claim] => 2
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16747729
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/747729 | Organic compositions to treat EPAS1-related diseases | Jan 20, 2020 | Issued |
Array
(
[id] => 16157359
[patent_doc_number] => 20200216912
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2020-07-09
[patent_title] => METHOD FOR SUPPRESSING BRAIN METASTASIS
[patent_app_type] => utility
[patent_app_number] => 16/745967
[patent_app_country] => US
[patent_app_date] => 2020-01-17
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 25741
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -1
[patent_words_short_claim] => 48
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16745967
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/745967 | METHOD FOR SUPPRESSING BRAIN METASTASIS | Jan 16, 2020 | Abandoned |
Array
(
[id] => 15899169
[patent_doc_number] => 20200149103
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2020-05-14
[patent_title] => METHODS AND DEVICES FOR SAMPLE COLLECTION AND ANALYSIS
[patent_app_type] => utility
[patent_app_number] => 16/743970
[patent_app_country] => US
[patent_app_date] => 2020-01-15
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 11049
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -57
[patent_words_short_claim] => 47
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16743970
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/743970 | METHODS AND DEVICES FOR SAMPLE COLLECTION AND ANALYSIS | Jan 14, 2020 | Abandoned |
Array
(
[id] => 15928807
[patent_doc_number] => 20200156037
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2020-05-21
[patent_title] => DE NOVO SYNTHESIZED GENE LIBRARIES
[patent_app_type] => utility
[patent_app_number] => 16/737401
[patent_app_country] => US
[patent_app_date] => 2020-01-08
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 115979
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -19
[patent_words_short_claim] => 47
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16737401
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/737401 | De novo synthesized gene libraries | Jan 7, 2020 | Issued |
Array
(
[id] => 17214890
[patent_doc_number] => 20210348227
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2021-11-11
[patent_title] => SUBSTRATE FOR NUCLEIC ACID ANALYSIS, FLOW CELL FOR NUCLEIC ACID ANALYSIS, AND IMAGE ANALYSIS METHOD
[patent_app_type] => utility
[patent_app_number] => 17/276898
[patent_app_country] => US
[patent_app_date] => 2019-12-24
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 8677
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -11
[patent_words_short_claim] => 37
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17276898
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/276898 | SUBSTRATE FOR NUCLEIC ACID ANALYSIS, FLOW CELL FOR NUCLEIC ACID ANALYSIS, AND IMAGE ANALYSIS METHOD | Dec 23, 2019 | Pending |
Array
(
[id] => 16112331
[patent_doc_number] => 20200208188
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2020-07-02
[patent_title] => DNA ASSEMBLY METHOD AND ITS APPLICATION
[patent_app_type] => utility
[patent_app_number] => 16/724679
[patent_app_country] => US
[patent_app_date] => 2019-12-23
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 8254
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -17
[patent_words_short_claim] => 14
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16724679
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/724679 | DNA assembly method and its application | Dec 22, 2019 | Issued |
Array
(
[id] => 16518679
[patent_doc_number] => 10869881
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2020-12-22
[patent_title] => Pharmaceutical composition comprising particles comprising a complex of a double-stranded polyribonucleotide and a polyalkyleneimine
[patent_app_type] => utility
[patent_app_number] => 16/724519
[patent_app_country] => US
[patent_app_date] => 2019-12-23
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 10
[patent_figures_cnt] => 10
[patent_no_of_words] => 29801
[patent_no_of_claims] => 15
[patent_no_of_ind_claims] => 1
[patent_words_short_claim] => 177
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16724519
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/724519 | Pharmaceutical composition comprising particles comprising a complex of a double-stranded polyribonucleotide and a polyalkyleneimine | Dec 22, 2019 | Issued |
Array
(
[id] => 16482405
[patent_doc_number] => 20200376005
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2020-12-03
[patent_title] => SHIP INHIBITION TO COMBAT OBESITY
[patent_app_type] => utility
[patent_app_number] => 16/724093
[patent_app_country] => US
[patent_app_date] => 2019-12-20
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 30595
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -13
[patent_words_short_claim] => 80
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16724093
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/724093 | SHIP INHIBITION TO COMBAT OBESITY | Dec 19, 2019 | Abandoned |
Array
(
[id] => 16564459
[patent_doc_number] => 10889820
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2021-01-12
[patent_title] => Fidgetin-like 2 as a target to enhance wound healing
[patent_app_type] => utility
[patent_app_number] => 16/709538
[patent_app_country] => US
[patent_app_date] => 2019-12-10
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 13
[patent_figures_cnt] => 13
[patent_no_of_words] => 6298
[patent_no_of_claims] => 22
[patent_no_of_ind_claims] => 1
[patent_words_short_claim] => 67
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16709538
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/709538 | Fidgetin-like 2 as a target to enhance wound healing | Dec 9, 2019 | Issued |
Array
(
[id] => 18762902
[patent_doc_number] => 11813281
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2023-11-14
[patent_title] => Methods for improving exercise tolerance in myalgic encephalomyelitis patients
[patent_app_type] => utility
[patent_app_number] => 17/413387
[patent_app_country] => US
[patent_app_date] => 2019-11-25
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 3
[patent_figures_cnt] => 3
[patent_no_of_words] => 10332
[patent_no_of_claims] => 16
[patent_no_of_ind_claims] => 1
[patent_words_short_claim] => 75
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17413387
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/413387 | Methods for improving exercise tolerance in myalgic encephalomyelitis patients | Nov 24, 2019 | Issued |
Array
(
[id] => 16153763
[patent_doc_number] => 20200215114
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2020-07-09
[patent_title] => COMPOSITIONS AND METHODS FOR PRODUCING EXOSOME LOADED THERAPEUTICS FOR THE TREATMENT OF MULTIPLE ONCOLOGICAL DISORDERS
[patent_app_type] => utility
[patent_app_number] => 16/688944
[patent_app_country] => US
[patent_app_date] => 2019-11-19
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 7601
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -18
[patent_words_short_claim] => 34
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16688944
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/688944 | COMPOSITIONS AND METHODS FOR PRODUCING EXOSOME LOADED THERAPEUTICS FOR THE TREATMENT OF MULTIPLE ONCOLOGICAL DISORDERS | Nov 18, 2019 | Pending |
Array
(
[id] => 15931815
[patent_doc_number] => 20200157541
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2020-05-21
[patent_title] => EXOSOME LOADED THERAPEUTICS FOR THE TREATMENT OF NON-ALCOHOLIC STEATOHEPATITIS, DIABETES MELLITUS TYPE 1 AND TYPE 2, ATHEROSCLEROTIC CARDIOVASCULAR DISEASE, AND ALPHA 1 ANTITRYPSIN DEFICIENCY
[patent_app_type] => utility
[patent_app_number] => 16/688954
[patent_app_country] => US
[patent_app_date] => 2019-11-19
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 14867
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -17
[patent_words_short_claim] => 40
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16688954
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/688954 | EXOSOME LOADED THERAPEUTICS FOR THE TREATMENT OF NON-ALCOHOLIC STEATOHEPATITIS, DIABETES MELLITUS TYPE 1 AND TYPE 2, ATHEROSCLEROTIC CARDIOVASCULAR DISEASE, AND ALPHA 1 ANTITRYPSIN DEFICIENCY | Nov 18, 2019 | Pending |
Array
(
[id] => 15927917
[patent_doc_number] => 20200155592
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2020-05-21
[patent_title] => USE OF OLIGONUCLEOTIDES FOR THE TREATMENT AND PREVENTION OF PAIN
[patent_app_type] => utility
[patent_app_number] => 16/683677
[patent_app_country] => US
[patent_app_date] => 2019-11-14
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 7984
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -15
[patent_words_short_claim] => 2
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16683677
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/683677 | Use of oligonucleotides for the treatment and prevention of pain | Nov 13, 2019 | Issued |
Array
(
[id] => 18413380
[patent_doc_number] => 11667915
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2023-06-06
[patent_title] => RNA duplexes with single stranded phosphorothioate nucleotide regions for additional functionality
[patent_app_type] => utility
[patent_app_number] => 16/680101
[patent_app_country] => US
[patent_app_date] => 2019-11-11
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 11
[patent_figures_cnt] => 11
[patent_no_of_words] => 20975
[patent_no_of_claims] => 20
[patent_no_of_ind_claims] => 2
[patent_words_short_claim] => 88
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16680101
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/680101 | RNA duplexes with single stranded phosphorothioate nucleotide regions for additional functionality | Nov 10, 2019 | Issued |
Array
(
[id] => 18051762
[patent_doc_number] => 11525135
[patent_country] => US
[patent_kind] => B2
[patent_issue_date] => 2022-12-13
[patent_title] => TLR3 ligands that activate both epithelial and myeloid cells
[patent_app_type] => utility
[patent_app_number] => 16/675846
[patent_app_country] => US
[patent_app_date] => 2019-11-06
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 22
[patent_figures_cnt] => 28
[patent_no_of_words] => 23568
[patent_no_of_claims] => 20
[patent_no_of_ind_claims] => 1
[patent_words_short_claim] => 98
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => patent
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16675846
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/675846 | TLR3 ligands that activate both epithelial and myeloid cells | Nov 5, 2019 | Issued |
Array
(
[id] => 17299464
[patent_doc_number] => 20210395303
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2021-12-23
[patent_title] => MINI-NUCLEOSOME CORE PROTEINS AND USE IN NUCLEIC ACID DELIVERY
[patent_app_type] => utility
[patent_app_number] => 17/292292
[patent_app_country] => US
[patent_app_date] => 2019-11-06
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 33984
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -41
[patent_words_short_claim] => 36
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17292292
[rel_patent_id] =>[rel_patent_doc_number] =>) 17/292292 | MINI-NUCLEOSOME CORE PROTEINS AND USE IN NUCLEIC ACID DELIVERY | Nov 5, 2019 | Pending |
Array
(
[id] => 15832475
[patent_doc_number] => 20200131519
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2020-04-30
[patent_title] => Silencing of HNF4A-P2 Isoforms with siRNA to Improve Hepatocyte Function in Liver Failure
[patent_app_type] => utility
[patent_app_number] => 16/670122
[patent_app_country] => US
[patent_app_date] => 2019-10-31
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 30344
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -15
[patent_words_short_claim] => 9
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16670122
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/670122 | Silencing of HNF4A-P2 isoforms with siRNA to improve hepatocyte function in liver failure | Oct 30, 2019 | Issued |
Array
(
[id] => 15527885
[patent_doc_number] => 20200056248
[patent_country] => US
[patent_kind] => A1
[patent_issue_date] => 2020-02-20
[patent_title] => METHOD FOR SORTING TISSUE CELLS
[patent_app_type] => utility
[patent_app_number] => 16/660333
[patent_app_country] => US
[patent_app_date] => 2019-10-22
[patent_effective_date] => 0000-00-00
[patent_drawing_sheets_cnt] => 0
[patent_figures_cnt] => 0
[patent_no_of_words] => 11994
[patent_no_of_claims] => 0
[patent_no_of_ind_claims] => -3
[patent_words_short_claim] => 2
[patent_maintenance] => 1
[patent_no_of_assignments] => 0
[patent_current_assignee] =>[type] => publication
[pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16660333
[rel_patent_id] =>[rel_patent_doc_number] =>) 16/660333 | METHOD FOR SORTING TISSUE CELLS | Oct 21, 2019 | Abandoned |