{"id":25,"date":"2021-08-30T21:00:55","date_gmt":"2021-08-30T21:00:55","guid":{"rendered":"https:\/\/labs.icahn.mssm.edu\/pawlicalab2\/?page_id=25"},"modified":"2025-12-02T16:26:15","modified_gmt":"2025-12-02T16:26:15","slug":"publications","status":"publish","type":"page","link":"https:\/\/labs.icahn.mssm.edu\/pawlicalab\/publications\/","title":{"rendered":"PUBLICATIONS"},"content":{"rendered":"<p>[et_pb_section fb_built=&#8221;1&#8243; _builder_version=&#8221;4.16&#8243; min_height=&#8221;1204.1px&#8221; custom_padding=&#8221;1px||0px|||&#8221; global_colors_info=&#8221;{}&#8221;][et_pb_row _builder_version=&#8221;4.16&#8243; background_size=&#8221;initial&#8221; background_position=&#8221;top_left&#8221; background_repeat=&#8221;repeat&#8221; width=&#8221;70%&#8221; width_tablet=&#8221;&#8221; width_phone=&#8221;&#8221; width_last_edited=&#8221;on|phone&#8221; min_height=&#8221;963.1px&#8221; custom_padding=&#8221;21px||10px|||&#8221; global_colors_info=&#8221;{}&#8221;][et_pb_column type=&#8221;4_4&#8243; _builder_version=&#8221;4.16&#8243; custom_padding=&#8221;|||&#8221; global_colors_info=&#8221;{}&#8221; custom_padding__hover=&#8221;|||&#8221;][et_pb_text _builder_version=&#8221;4.16&#8243; text_font_size=&#8221;15px&#8221; background_size=&#8221;initial&#8221; background_position=&#8221;top_left&#8221; background_repeat=&#8221;repeat&#8221; min_height=&#8221;778.6px&#8221; text_font_size_tablet=&#8221;&#8221; text_font_size_phone=&#8221;12px&#8221; text_font_size_last_edited=&#8221;on|phone&#8221; global_colors_info=&#8221;{}&#8221;]<\/p>\n<h4><span style=\"font-family: inherit;font-weight: normal;font-size: small\">Phan N, <strong>Pawlica P<\/strong>. Viral non-coding RNAs hijack host Pumilio proteins to regulate host transcripts. <em>bioRxiv.<\/em> 2025. <span style=\"color: #0c71c3\">https:\/\/doi.org\/10.1101\/2025.11.27.691032<\/span><\/span><\/h4>\n<h4><span style=\"font-family: inherit;font-weight: normal;font-size: small\">Phan N*, Zaytseva Y*, Lin CC, Mishra M, Sun W, <strong>Pawlica P<\/strong>. PUM2 binds SARS-CoV-2 RNA and PUM1 mildly reduces viral RNA levels, but neither protein affects progeny virus production. <em>J Gen Virol.<\/em> 2025;106(9). <span style=\"color: #0c71c3\">PMID: 40956600 <span style=\"color: #666666\">(* contributed equally).\u00a0<\/span><\/span><\/span><\/h4>\n<h4><span style=\"font-family: inherit;font-weight: normal;font-size: small\"><strong><\/strong><strong><\/strong><strong>Pawlica P*<\/strong>, Yario TA, White S, Wang J, Moss WN, Hui P, Vinetz JM, Steitz JA. SARS-CoV-2 expresses a microRNA-like small RNA able to selectively repress host genes. <em>Proc Natl Acad Sci U S A<\/em> 118. 2021. <span style=\"color: #0c71c3\"><a href=\"https:\/\/www.pnas.org\/doi\/full\/10.1073\/pnas.2116668118\">PMID: 34903581<\/a><\/span>(* co-corresponding)\u00a0<\/span><\/h4>\n<h4><span style=\"font-family: inherit;font-weight: normal;font-size: small\"><strong>Pawlica P<\/strong>, Sheu-Gruttadauria J, MacRae I J, Steitz J A, How complementary targets expose the microRNA 3&#8242; end for tailing and trimming during target-directed microRNA degradation, Cold Spring Harb Symp Quant Biol, 2020, Feb 4;039321.\u00a0<span style=\"color: #0c71c3\"><a href=\"https:\/\/pubmed.ncbi.nlm.nih.gov\/32019864\/\"><span class=\"identifier pubmed\"><span class=\"id-label\">PMID:\u00a0<\/span>32019864<\/span><\/a><\/span><\/span><\/h4>\n<h4><span style=\"font-family: inherit;font-weight: normal;font-size: small\">Sheu-Gruttadauria J*, <strong>Pawlica P*<\/strong>, Klum SM, Wang S, Yario TA, Schirle-Oakdale NT, Steitz JA, MacRae IJ, 2019, Structural basis for target-directed microRNA degradation, Molecular Cell. 2019 Sep 19;75(6):1243-1255. <span style=\"color: #0c71c3\">PMID: 31353209<\/span><a href=\"https:\/\/pubmed.ncbi.nlm.nih.gov\/31353209\/\"><\/a>\u00a0(* contributed equally)<\/span><\/h4>\n<h4><span style=\"font-family: inherit;font-weight: normal;font-size: small\">Withers JB, Mondol V, <strong>Pawlica P<\/strong>, Rosa-Mercado NA, Tycowski KT, Ghasempur S, Torabi SF, and Steitz JA, 2019, Idiosyncrasies of viral noncoding RNAs provide insights into host cell biology. Annual Review of Virology. 019 Sep 29;6(1):297-317.\u00a0<span style=\"color: #0c71c3\">PMID: 31039329<\/span><\/span><\/h4>\n<h4><span style=\"font-family: inherit;font-weight: normal;font-size: small\"><strong>Pawlica P<\/strong>, Moss W N, Steitz J A, 2016, Host miRNA degradation by Herpesvirus saimiri small nuclear RNA requires an unstructured interacting region, RNA, 2016, 22(8):1181-9. <span style=\"color: #0c71c3\"><a href=\"https:\/\/pubmed.ncbi.nlm.nih.gov\/27335146\/\">PMID:\u00a0<\/a><a href=\"https:\/\/pubmed.ncbi.nlm.nih.gov\/27335146\/\" class=\"usa-link\">27335146<\/a><\/span><a href=\"https:\/\/pubmed.ncbi.nlm.nih.gov\/27335146\/\"><\/a><\/span><\/h4>\n<h4><span style=\"font-family: inherit;font-weight: normal;font-size: small\"><strong>Pawlica P<\/strong>, Dufour C, Berthoux L, 2015, Inhibition of microtubules and dynein rescues HIV-1 from owl monkey TRIMCyp-mediated restriction in a cellular context-specific fashion, Journal of General Virology, Apr;96(Pt 4):874-86, <span style=\"color: #0c71c3\"><a href=\"https:\/\/pubmed.ncbi.nlm.nih.gov\/25502651\/\">PMID: 25502651<\/a><\/span><\/span><\/h4>\n<h4><span style=\"font-family: inherit;font-weight: normal;font-size: small\"><strong><\/strong><strong>Pawlica P<\/strong>, Le Sage V, Poccardi N, Tremblay MJ, Mouland AJ, Berthoux L, 2014, Functional evidence for the involvement of microtubules and dynein motor complexes in TRIM5\u03b1-mediated restriction of retroviruses, Journal of Virology, 88(10):5661-76. <span style=\"color: #0c71c3\">PMID: 24600008<\/span><\/span><\/h4>\n<h4><span style=\"font-family: inherit;font-weight: normal;font-size: small\"><strong>Pawlica P<\/strong>, Berthoux L, 2014, Cytoplasmic dynein promotes HIV-1 uncoating, Viruses, 6(11), 4195-4211. <span style=\"color: #0c71c3\">PMID: 25375884<\/span><\/span><\/h4>\n<h4><span style=\"font-family: inherit;font-weight: normal;font-size: small\">Veillette M, Bichel K, <strong>Pawlica P<\/strong>, Freund SM, Plourde MB, Pham QT, Reyes-Moreno C, James LC, Berthoux L, 2013, The V86M mutation in HIV-1 capsid confers resistance to TRIM5\u03b1 by abrogation of cyclophilin A-dependent restriction and enhancement of viral nuclear import, Retrovirology, 10:25.\u00a0<span style=\"color: #0c71c3\">PMID: 23448277<\/span><\/span><\/h4>\n<h4><span style=\"font-family: inherit;font-weight: normal;font-size: small\">Pham QT, Veillette M, Brandariz-Nu\u00f1ez A, <strong>Pawlica P<\/strong>, Thibert-Lefebvre C, Chandonnet N, Diaz-Griffero F, Berthoux L, 2013, A novel aminoacid determinant of HIV-1 restriction in the TRIM5\u03b1 variable 1 region isolated in a random mutagenic screen, Virus Research, 173(2):306-14. <span style=\"color: #0c71c3\">PMID: 23448277<\/span><\/span><\/h4>\n<p><span style=\"color: #0c71c3\"><span style=\"color: #000000\"><\/span><\/span><\/p>\n<p>[\/et_pb_text][\/et_pb_column][\/et_pb_row][\/et_pb_section]<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Phan N, Pawlica P. Viral non-coding RNAs hijack host Pumilio proteins to regulate host transcripts. bioRxiv. 2025. https:\/\/doi.org\/10.1101\/2025.11.27.691032 Phan N*, Zaytseva Y*, Lin CC, Mishra M, Sun W, Pawlica P. PUM2 binds SARS-CoV-2 RNA and PUM1 mildly reduces viral RNA levels, but neither protein affects progeny virus production. J Gen Virol. 2025;106(9). PMID: 40956600 (* [&hellip;]<\/p>\n","protected":false},"author":493,"featured_media":0,"parent":0,"menu_order":3,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_et_pb_use_builder":"on","_et_pb_old_content":"<p><strong>2021<\/strong><\/p><p><strong>Pawlica P<\/strong>, Yario T, White S, Wang J, Moss WN, Hui P, Vinetz JM, Steitz JA. SARS-CoV-2 expresses a microRNA-like small RNA able to selectively repress host genes. bioRxiv. 2021:2021.09.08.459464. doi: 10.1101\/2021.09.08.459464. [preprint; not yet peer-reviewed]<\/p><p>\u00a0<\/p><p><strong>2020<\/strong><\/p><p><strong>Pawlica P<\/strong>, Sheu-Gruttadauria J, MacRae I J, Steitz J A, How complementary targets expose the microRNA 3' end for tailing and trimming during target-directed microRNA degradation, Cold Spring Harb Symp Quant Biol, 2020, Feb 4;039321. PMID: 32019864<\/p><p>\u00a0<\/p><p><strong>2019<\/strong><\/p><p>Sheu-Gruttadauria J*, <strong>Pawlica P<\/strong>* (* contributed equally), Klum SM, Wang S, Yario TA, Schirle-Oakdale NT, Steitz JA, MacRae IJ, 2019, Structural basis for target-directed microRNA degradation, Molecular Cell. 2019 Sep 19;75(6):1243-1255. PMCID: PMC6754277<\/p><p>Withers JB, Mondol V, <strong>Pawlica P<\/strong>, Rosa-Mercado NA, Tycowski KT, Ghasempur S, Torabi SF, and Steitz JA, 2019, Idiosyncrasies of viral noncoding RNAs provide insights into host cell biology. Annual Review of Virology. 019 Sep 29;6(1):297-317, PMCID: PMC6768742<\/p><p><strong>Pawlica P<\/strong>, Moss W N, Steitz J A, 2016, Host miRNA degradation by Herpesvirus saimiri small nuclear RNA requires an unstructured interacting region, RNA, 2016, 22(8):1181-9, PMCID: PMC4931111<\/p><p>\u00a0<\/p><p><strong>2015<\/strong><\/p><p><strong> Pawlica P<\/strong>, Dufour C, Berthoux L, 2015, Inhibition of microtubules and dynein rescues HIV-1 from owl monkey TRIMCyp-mediated restriction in a cellular context-specific fashion, Journal of General Virology, Apr;96(Pt 4):874-86, PMID: 25502651<\/p><p>\u00a0<\/p><p><strong>2014<\/strong><\/p><p><strong>Pawlica P<\/strong>, Le Sage V, Poccardi N, Tremblay MJ, Mouland AJ, Berthoux L, 2014, Functional evidence for the involvement of microtubules and dynein motor complexes in TRIM5\u03b1-mediated restriction of retroviruses, Journal of Virology, 88(10):5661-76, PMCID: PMC4019117<\/p><p><strong>Pawlica P<\/strong>, Berthoux L, 2014, Cytoplasmic dynein promotes HIV-1 uncoating, Viruses, 6(11), 4195-4211, PMCID: PMC4246216<\/p><p>\u00a0<\/p><p><strong>2013<\/strong><\/p><p>Veillette M, Bichel K, <strong>Pawlica P<\/strong>, Freund SM, Plourde MB, Pham QT, Reyes-Moreno C, James LC, Berthoux L, 2013, The V86M mutation in HIV-1 capsid confers resistance to TRIM5\u03b1 by abrogation of cyclophilin A-dependent restriction and enhancement of viral nuclear import, Retrovirology, 10:25, PMCID: PMC3598646<\/p><p>Pham QT, Veillette M, Brandariz-Nu\u00f1ez A, <strong>Pawlica P<\/strong>, Thibert-Lefebvre C, Chandonnet N, Diaz-Griffero F, Berthoux L, 2013, A novel aminoacid determinant of HIV-1 restriction in the TRIM5\u03b1 variable 1 region isolated in a random mutagenic screen, Virus Research, 173(2):306-14, PMCID: PMC4317569<\/p>","_et_gb_content_width":"","footnotes":""},"class_list":["post-25","page","type-page","status-publish","hentry"],"aioseo_notices":[],"_links":{"self":[{"href":"https:\/\/labs.icahn.mssm.edu\/pawlicalab\/wp-json\/wp\/v2\/pages\/25","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/labs.icahn.mssm.edu\/pawlicalab\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/labs.icahn.mssm.edu\/pawlicalab\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/labs.icahn.mssm.edu\/pawlicalab\/wp-json\/wp\/v2\/users\/493"}],"replies":[{"embeddable":true,"href":"https:\/\/labs.icahn.mssm.edu\/pawlicalab\/wp-json\/wp\/v2\/comments?post=25"}],"version-history":[{"count":28,"href":"https:\/\/labs.icahn.mssm.edu\/pawlicalab\/wp-json\/wp\/v2\/pages\/25\/revisions"}],"predecessor-version":[{"id":738,"href":"https:\/\/labs.icahn.mssm.edu\/pawlicalab\/wp-json\/wp\/v2\/pages\/25\/revisions\/738"}],"wp:attachment":[{"href":"https:\/\/labs.icahn.mssm.edu\/pawlicalab\/wp-json\/wp\/v2\/media?parent=25"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}