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Ngoclan Thi Mai

Examiner (ID: 2247, Phone: (571)272-1246 , Office: P/1733 )

Most Active Art Unit
1742
Art Unit(s)
1741, 3641, 1733, 1742, 5332, 2899, 2204, 1793, 1734
Total Applications
2444
Issued Applications
2036
Pending Applications
108
Abandoned Applications
302

Applications

Application numberTitle of the applicationFiling DateStatus
Array ( [id] => 16868604 [patent_doc_number] => 20210162071 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2021-06-03 [patent_title] => ADENO-ASSOCIATED VIRUS VARIANT CAPSIDS AND METHODS OF USE THEREOF [patent_app_type] => utility [patent_app_number] => 17/163093 [patent_app_country] => US [patent_app_date] => 2021-01-29 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 34345 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => -21 [patent_words_short_claim] => 138 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => publication [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17163093 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/163093
Adeno-associated virus variant capsids and methods of use thereof Jan 28, 2021 Issued
Array ( [id] => 16899074 [patent_doc_number] => 20210177990 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2021-06-17 [patent_title] => ADENO-ASSOCIATED VIRUS VARIANT CAPSIDS AND METHODS OF USE THEREOF [patent_app_type] => utility [patent_app_number] => 17/163038 [patent_app_country] => US [patent_app_date] => 2021-01-29 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 34375 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => -21 [patent_words_short_claim] => 78 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => publication [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17163038 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/163038
ADENO-ASSOCIATED VIRUS VARIANT CAPSIDS AND METHODS OF USE THEREOF Jan 28, 2021 Abandoned
Array ( [id] => 16867645 [patent_doc_number] => 20210161112 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2021-06-03 [patent_title] => NON-HUMAN ANIMALS HAVING A HUMANIZED CLUSTER OF DIFFERENTIATION 47 GENE [patent_app_type] => utility [patent_app_number] => 17/161801 [patent_app_country] => US [patent_app_date] => 2021-01-29 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 24150 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => -101 [patent_words_short_claim] => 30 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => publication [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17161801 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/161801
Mouse having a humanized cluster of differentiation 47 gene Jan 28, 2021 Issued
Array ( [id] => 17299500 [patent_doc_number] => 20210395339 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2021-12-23 [patent_title] => GROWTH FACTOR ANTAGONISTS FOR ORGAN TRANSPLANT ALLOIMMUNITY AND ARTERIOSCLEROSIS [patent_app_type] => utility [patent_app_number] => 17/153636 [patent_app_country] => US [patent_app_date] => 2021-01-20 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 43135 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => -53 [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] => 17153636 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/153636
GROWTH FACTOR ANTAGONISTS FOR ORGAN TRANSPLANT ALLOIMMUNITY AND ARTERIOSCLEROSIS Jan 19, 2021 Abandoned
Array ( [id] => 16946675 [patent_doc_number] => 20210205366 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2021-07-08 [patent_title] => METHOD FOR ACTIVATING IMMUNOCYTES IN VITRO [patent_app_type] => utility [patent_app_number] => 17/134209 [patent_app_country] => US [patent_app_date] => 2020-12-25 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 12344 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => -9 [patent_words_short_claim] => 55 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => publication [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17134209 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/134209
METHOD FOR ACTIVATING IMMUNOCYTES IN VITRO Dec 24, 2020 Pending
Array ( [id] => 18238731 [patent_doc_number] => 20230071042 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2023-03-09 [patent_title] => BCR TRANSGENIC MICE WITH A COMMON LEADER SEQUENCE [patent_app_type] => utility [patent_app_number] => 17/785180 [patent_app_country] => US [patent_app_date] => 2020-12-17 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 14778 [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] => 17785180 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/785180
BCR TRANSGENIC MICE WITH A COMMON LEADER SEQUENCE Dec 16, 2020 Pending
Array ( [id] => 16775711 [patent_doc_number] => 20210112788 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2021-04-22 [patent_title] => PRODUCTION OF FERTILE XY FEMALE ANIMALS BY SILENCING OF GENES ON THE Y CHROMOSOME [patent_app_type] => utility [patent_app_number] => 17/119076 [patent_app_country] => US [patent_app_date] => 2020-12-11 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 66833 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => 0 [patent_words_short_claim] => 168 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => publication [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17119076 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/119076
Production of fertile XY female animals by silencing of genes on the Y chromosome Dec 10, 2020 Issued
Array ( [id] => 17037040 [patent_doc_number] => 20210253998 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2021-08-19 [patent_title] => ISOLATED NAIVE PLURIPOTENT STEM CELLS AND METHODS OF GENERATING SAME [patent_app_type] => utility [patent_app_number] => 17/117157 [patent_app_country] => US [patent_app_date] => 2020-12-10 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 88825 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => -20 [patent_words_short_claim] => 55 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => publication [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17117157 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/117157
ISOLATED NAIVE PLURIPOTENT STEM CELLS AND METHODS OF GENERATING SAME Dec 9, 2020 Pending
Array ( [id] => 18143739 [patent_doc_number] => 20230017590 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2023-01-19 [patent_title] => COMPOSITIONS AND METHODS FOR CULTURING HEMATOPOIETIC STEM AND PROGENITOR CELLS [patent_app_type] => utility [patent_app_number] => 17/780370 [patent_app_country] => US [patent_app_date] => 2020-11-27 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 20122 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => -21 [patent_words_short_claim] => 15 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => publication [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17780370 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/780370
COMPOSITIONS AND METHODS FOR CULTURING HEMATOPOIETIC STEM AND PROGENITOR CELLS Nov 26, 2020 Pending
Array ( [id] => 17235614 [patent_doc_number] => 11179477 [patent_country] => US [patent_kind] => B2 [patent_issue_date] => 2021-11-23 [patent_title] => Method of using adeno-associated virus with variant capsid [patent_app_type] => utility [patent_app_number] => 16/952002 [patent_app_country] => US [patent_app_date] => 2020-11-18 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 38 [patent_figures_cnt] => 23 [patent_no_of_words] => 34307 [patent_no_of_claims] => 6 [patent_no_of_ind_claims] => 2 [patent_words_short_claim] => 111 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => patent [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16952002 [rel_patent_id] =>[rel_patent_doc_number] =>)
16/952002
Method of using adeno-associated virus with variant capsid Nov 17, 2020 Issued
Array ( [id] => 17206690 [patent_doc_number] => 11167041 [patent_country] => US [patent_kind] => B2 [patent_issue_date] => 2021-11-09 [patent_title] => Adeno-associated virus variant capsids and methods of use thereof [patent_app_type] => utility [patent_app_number] => 16/951984 [patent_app_country] => US [patent_app_date] => 2020-11-18 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 38 [patent_figures_cnt] => 23 [patent_no_of_words] => 34311 [patent_no_of_claims] => 6 [patent_no_of_ind_claims] => 2 [patent_words_short_claim] => 111 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => patent [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 16951984 [rel_patent_id] =>[rel_patent_doc_number] =>)
16/951984
Adeno-associated virus variant capsids and methods of use thereof Nov 17, 2020 Issued
Array ( [id] => 18034728 [patent_doc_number] => 20220378943 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2022-12-01 [patent_title] => ENHANCER POLYNUCLEOTIDE RESPONDING TO HEART FAILURE AND EXPRESSION VECTOR INCLUDING SAID ENHANCER POLYNUCLEOTIDE [patent_app_type] => utility [patent_app_number] => 17/775780 [patent_app_country] => US [patent_app_date] => 2020-11-12 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 10358 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => -10 [patent_words_short_claim] => 30 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => publication [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17775780 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/775780
ENHANCER POLYNUCLEOTIDE RESPONDING TO HEART FAILURE AND EXPRESSION VECTOR INCLUDING SAID ENHANCER POLYNUCLEOTIDE Nov 11, 2020 Pending
Array ( [id] => 16671312 [patent_doc_number] => 20210060075 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2021-03-04 [patent_title] => METHODS FOR IDENTIFYING ANTIGEN-SPECIFIC T CELL RECEPTORS [patent_app_type] => utility [patent_app_number] => 17/095216 [patent_app_country] => US [patent_app_date] => 2020-11-11 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 15607 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => -36 [patent_words_short_claim] => 12 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => publication [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17095216 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/095216
METHODS FOR IDENTIFYING ANTIGEN-SPECIFIC T CELL RECEPTORS Nov 10, 2020 Pending
Array ( [id] => 18090363 [patent_doc_number] => 20220408704 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2022-12-29 [patent_title] => GENETICALLY MODIFIED NON-HUMAN ANIMALS WITH HUMAN OR CHIMERIC THPO [patent_app_type] => utility [patent_app_number] => 17/770728 [patent_app_country] => US [patent_app_date] => 2020-10-30 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 20582 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => -56 [patent_words_short_claim] => 22 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => publication [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17770728 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/770728
GENETICALLY MODIFIED NON-HUMAN ANIMALS WITH HUMAN OR CHIMERIC THPO Oct 29, 2020 Pending
Array ( [id] => 18179910 [patent_doc_number] => 20230040639 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2023-02-09 [patent_title] => TGFbeta1 Hyperactivation Causes Gender-Specific Calcific Aortic Stenosis [patent_app_type] => utility [patent_app_number] => 17/783381 [patent_app_country] => US [patent_app_date] => 2020-10-30 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 16825 [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] => 17783381 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/783381
TGFbeta1 Hyperactivation Causes Gender-Specific Calcific Aortic Stenosis Oct 29, 2020 Pending
Array ( [id] => 17592557 [patent_doc_number] => 20220142130 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2022-05-12 [patent_title] => Targeting Vector, Nucleic Acid Composition, and Method for Constructing Liver-injured Mouse Model [patent_app_type] => utility [patent_app_number] => 17/611882 [patent_app_country] => US [patent_app_date] => 2020-10-20 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 10947 [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] => 17611882 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/611882
Targeting Vector, Nucleic Acid Composition, and Method for Constructing Liver-injured Mouse Model Oct 19, 2020 Abandoned
Array ( [id] => 18056460 [patent_doc_number] => 20220387546 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2022-12-08 [patent_title] => Methods For Treating And/Or Preventing Hypersomnias [patent_app_type] => utility [patent_app_number] => 17/770406 [patent_app_country] => US [patent_app_date] => 2020-10-15 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 9687 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => -22 [patent_words_short_claim] => 75 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => publication [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17770406 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/770406
Methods For Treating And/Or Preventing Hypersomnias Oct 14, 2020 Pending
Array ( [id] => 18018111 [patent_doc_number] => 20220369610 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2022-11-24 [patent_title] => HIGH FREQUENCY TARGETED ANIMAL TRANSGENESIS [patent_app_type] => utility [patent_app_number] => 17/767311 [patent_app_country] => US [patent_app_date] => 2020-10-08 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 10669 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => -50 [patent_words_short_claim] => 11 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => publication [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17767311 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/767311
HIGH FREQUENCY TARGETED ANIMAL TRANSGENESIS Oct 7, 2020 Pending
Array ( [id] => 18018109 [patent_doc_number] => 20220369608 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2022-11-24 [patent_title] => METHOD FOR ESTABLISHING DIABETES DISEASE MODEL DOG [patent_app_type] => utility [patent_app_number] => 17/762629 [patent_app_country] => US [patent_app_date] => 2020-09-23 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 5105 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => -16 [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] => 17762629 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/762629
METHOD FOR ESTABLISHING DIABETES DISEASE MODEL DOG Sep 22, 2020 Abandoned
Array ( [id] => 17943513 [patent_doc_number] => 20220330530 [patent_country] => US [patent_kind] => A1 [patent_issue_date] => 2022-10-20 [patent_title] => METHOD OF MAKING HUMAN MOUSE XENOGRAFTS [patent_app_type] => utility [patent_app_number] => 17/642768 [patent_app_country] => US [patent_app_date] => 2020-09-11 [patent_effective_date] => 0000-00-00 [patent_drawing_sheets_cnt] => 0 [patent_figures_cnt] => 0 [patent_no_of_words] => 8730 [patent_no_of_claims] => 0 [patent_no_of_ind_claims] => -40 [patent_words_short_claim] => 35 [patent_maintenance] => 1 [patent_no_of_assignments] => 0 [patent_current_assignee] =>[type] => publication [pdf_file] =>[firstpage_image] =>[orig_patent_app_number] => 17642768 [rel_patent_id] =>[rel_patent_doc_number] =>)
17/642768
METHOD OF MAKING HUMAN MOUSE XENOGRAFTS Sep 10, 2020 Abandoned
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