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	<title>Fernando Moreno Herrero Lab</title>
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	<description>Molecular Biophysics Lab</description>
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	<title>Fernando Moreno Herrero Lab</title>
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		<title>3rd Workshop on Advanced Nanobioscience</title>
		<link>http://www.fernandomorenoherrero.com/home/3rd-workshop-on-advanced-nanobioscience/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=3rd-workshop-on-advanced-nanobioscience</link>
		
		<dc:creator><![CDATA[Ana]]></dc:creator>
		<pubDate>Tue, 30 May 2023 09:28:02 +0000</pubDate>
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					<description><![CDATA[<p>Fernando Moreno-Herrero, together with Ana G. del Arco, organized “The 3rd Workshop on Advanced Nanobioscience”, which took place in Madrid, at the National Center of Biotechnology (CNB-CSIC) on 26th May 2023.</p>
<p>Every year, the Macromolecular Structures Department hosts a one-day workshop focusing on current topics of relevance. For this occasion, several exciting topics were planned for discussion: mass photometry, nanopore biophysics, Optical and Magnetic Tweezers, Atomic Force Microscopy, and other fluorescence-based methods.</p>
The post <a href="http://www.fernandomorenoherrero.com/home/3rd-workshop-on-advanced-nanobioscience/"><strong>3<sup>rd</sup> Workshop on Advanced Nanobioscience</strong></a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></description>
										<content:encoded><![CDATA[<p class="wp-block-paragraph">Fernando Moreno-Herrero, together with Ana G. del Arco, organized <strong>“The 3<sup>rd</sup> Workshop on Advanced Nanobioscience”</strong>, which took place in Madrid, at the National Center of Biotechnology (CNB-CSIC) on 26<sup>th</sup> May 2023.</p><p class="wp-block-paragraph">Every year, the Macromolecular Structures Department hosts a one-day workshop focusing on current topics of relevance. For this occasion, several exciting topics were planned for discussion. One of them was mass photometry, featuring a talk by <strong>Prof. Philip Kukura</strong> (Oxford University), who is the inventor of this methodology. Mass Photometry has gained popularity in labs worldwide as it complements other techniques in determining stoichiometry and protein-protein interactions. Additionally, the workshop included discussions on the latest advances in nanopore biophysics with presentations from some of our esteemed researchers working on this subject in Spain, including <strong>Dr. Silvia Hernandez-Ainsa</strong> (Univ. Zaragoza), and <strong>Dr. David Rodriguez-Larrea</strong> (Instituto Biofisika). Furthermore, we invited <strong>Dr. Sonja Schmidt</strong> (Wageningen University), a young researcher who is establishing her lab in The Netherlands. Time was allocated to provide updates on various topics that the biophysics community in the Madrid area is currently focusing on, such as Optical and Magnetic Tweezers, Atomic Force Microscopy, and other fluorescence-based methods. In this respect we invited <strong>Dr. Andra Dumitru</strong> (CNIC), also a young researcher aiming to start her own group in the coming future on mechanobiology and AFM. The conference also included talks from other local group leaders (<strong>Dr. Borja Ibarra, Dr. Pedro J. de Pablo, Dr. Cristina Flors, and Dr. Salvatore Assenza</strong>), and PhD students. We put special care in maintaining an appropriate gender balance when creating the program, resulting in six male speakers and seven female speakers.</p><p class="wp-block-paragraph">We thanks to The Company of Biologists, The Spanish Biophysical Society and Lumicks for their support. The 2023 workshop was a great success with approximately 80 in-person participants (close to the maximum occupancy of the CNB auditorium) and around 15 online participants.</p>The post <a href="http://www.fernandomorenoherrero.com/home/3rd-workshop-on-advanced-nanobioscience/"><strong>3<sup>rd</sup> Workshop on Advanced Nanobioscience</strong></a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></content:encoded>
					
		
		
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		<title>SBE “Manuel Rico” – Bruker Prize awarded to Fernando Moreno-Herrero</title>
		<link>http://www.fernandomorenoherrero.com/home/sbe-manuel-rico-bruker-prize-awarded-to-fernando-moreno-herrero/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=sbe-manuel-rico-bruker-prize-awarded-to-fernando-moreno-herrero</link>
		
		<dc:creator><![CDATA[Ana]]></dc:creator>
		<pubDate>Tue, 30 May 2023 09:20:53 +0000</pubDate>
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		<guid isPermaLink="false">http://www.fernandomorenoherrero.com/?p=2339</guid>

					<description><![CDATA[<p>Fernando Moreno-Herrero has been awarded with the “Manuel Rico” – Bruker Prize of The Spanish Biophysical Society 2023 in recognition of his pioneering work in the development of molecular biophysics using Atomic Force Microscopy and Magnetic Tweezers in Spain. The jury highlights his pioneering biophysical studies on the molecular machinery involved in DNA repair, organization, and [&#8230;]</p>
The post <a href="http://www.fernandomorenoherrero.com/home/sbe-manuel-rico-bruker-prize-awarded-to-fernando-moreno-herrero/">SBE “Manuel Rico” – Bruker Prize awarded to Fernando Moreno-Herrero</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></description>
										<content:encoded><![CDATA[<p class="wp-block-paragraph">Fernando Moreno-Herrero has been awarded with the “Manuel Rico” – Bruker Prize of The Spanish Biophysical Society 2023 in recognition of his pioneering work in the development of molecular biophysics using Atomic Force Microscopy and Magnetic Tweezers in Spain. The jury highlights his pioneering biophysical studies on the molecular machinery involved in DNA repair, organization, and replication. This year&#8217;s award has been jointly granted to Fernando Moreno-Herrero and Teresa Giráldez Fernández, professor at the University of La Laguna.</p><figure class="wp-block-image size-large"><a href="http://www.fernandomorenoherrero.com/wp-content/uploads/2023/05/SBE-prize.jpg"><img fetchpriority="high" decoding="async" width="1024" height="799" src="http://www.fernandomorenoherrero.com/wp-content/uploads/2023/05/SBE-prize-1024x799.jpg" alt="" class="wp-image-2340" srcset="http://www.fernandomorenoherrero.com/wp-content/uploads/2023/05/SBE-prize-1024x799.jpg 1024w, http://www.fernandomorenoherrero.com/wp-content/uploads/2023/05/SBE-prize-300x234.jpg 300w, http://www.fernandomorenoherrero.com/wp-content/uploads/2023/05/SBE-prize-768x599.jpg 768w, http://www.fernandomorenoherrero.com/wp-content/uploads/2023/05/SBE-prize-1536x1199.jpg 1536w, http://www.fernandomorenoherrero.com/wp-content/uploads/2023/05/SBE-prize-600x468.jpg 600w, http://www.fernandomorenoherrero.com/wp-content/uploads/2023/05/SBE-prize.jpg 1634w" sizes="(max-width: 1024px) 100vw, 1024px" /></a></figure>The post <a href="http://www.fernandomorenoherrero.com/home/sbe-manuel-rico-bruker-prize-awarded-to-fernando-moreno-herrero/">SBE “Manuel Rico” – Bruker Prize awarded to Fernando Moreno-Herrero</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></content:encoded>
					
		
		
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		<title>APLF and long non-coding RNA NIHCOLE promote stable DNA synapsis in non-homologous end joining</title>
		<link>http://www.fernandomorenoherrero.com/papers/aplf-and-long-non-coding-rna-nihcole-promote-stable-dna-synapsis-in-non-homologous-end-joining/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=aplf-and-long-non-coding-rna-nihcole-promote-stable-dna-synapsis-in-non-homologous-end-joining</link>
		
		<dc:creator><![CDATA[Ana]]></dc:creator>
		<pubDate>Fri, 13 Jan 2023 11:03:31 +0000</pubDate>
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		<guid isPermaLink="false">http://www.fernandomorenoherrero.com/?p=2218</guid>

					<description><![CDATA[<p>Here, we show that Ku70-Ku80 and APLF establish a minimal complex sufficient to support DNA synapsis. APLF and long non-coding RNA NIHCOLE promote stable DNA synapsis in non-homologous end joining. Additionally, we show how APLF promotes synapsis of DNA ends for several minutes under pN forces and lncRNA NIHCOLE stabilises these synapsis via a small and structured domain relevant in DNA repair by NHEJ.</p>
The post <a href="http://www.fernandomorenoherrero.com/papers/aplf-and-long-non-coding-rna-nihcole-promote-stable-dna-synapsis-in-non-homologous-end-joining/">APLF and long non-coding RNA NIHCOLE promote stable DNA synapsis in non-homologous end joining</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></description>
										<content:encoded><![CDATA[<p class="wp-block-paragraph">De Bragança S, Aicart-Ramos C, Arribas-Bosacoma R, Rivera-Calzada A, Unfried J P, Prats-Mari L, Marin-Baquero M, Fortes P, Llorca* O and Moreno-Herrero* F.</p><p class="wp-block-paragraph"><strong>Abstract:</strong>&nbsp;The synapsis of DNA ends is a critical step for the repair of double-strand breaks by non-homologous end joining (NHEJ). This is performed by a multicomponent protein complex assembled around Ku70-Ku80 heterodimers and regulated by accessory factors, including long non-coding RNAs, through poorly understood mechanisms. Here, we use magnetic tweezers to investigate the contributions of core NHEJ proteins and APLF and lncRNA NIHCOLE to DNA synapsis. APLF stabilizes DNA end bridging and, together with Ku70-Ku80, establishes a minimal complex that supports DNA synapsis for several minutes under piconewton forces. We find the C-terminal acidic region of APLF to be critical for bridging. NIHCOLE increases the dwell time of the synapses by Ku70-Ku80 and APLF. This effect is further enhanced by a small and structured RNA domain within NIHCOLE. We propose a model where Ku70-Ku80 can simultaneously bind DNA, APLF, and structured RNAs to promote the stable joining of DNA ends.</p><p class="wp-block-paragraph"><a href="https://doi.org/10.1016/j.celrep.2022.111917" target="_blank" rel="noreferrer noopener">LINK</a>&nbsp;a la publicación.</p>The post <a href="http://www.fernandomorenoherrero.com/papers/aplf-and-long-non-coding-rna-nihcole-promote-stable-dna-synapsis-in-non-homologous-end-joining/">APLF and long non-coding RNA NIHCOLE promote stable DNA synapsis in non-homologous end joining</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></content:encoded>
					
		
		
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		<title>Human HELB is a processive motor protein which catalyses RPA clearance from single-stranded DNA</title>
		<link>http://www.fernandomorenoherrero.com/papers/human-helb-is-a-processive-motor-protein-which-catalyses-rpa-clearance-from-single-stranded-dna/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=human-helb-is-a-processive-motor-protein-which-catalyses-rpa-clearance-from-single-stranded-dna</link>
		
		<dc:creator><![CDATA[Ana]]></dc:creator>
		<pubDate>Fri, 08 Apr 2022 11:36:28 +0000</pubDate>
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		<guid isPermaLink="false">http://www.fernandomorenoherrero.com/?p=2172</guid>

					<description><![CDATA[<p>Here, we characterize the biochemical activities of the human DNA helicase B (HELB) using bulk and single-molecule methods.<br />
We found that HELB is a monomeric protein that binds to ssDNA with a site size of 20nt, unexpectedly large for SF1 helicases, suggesting  an additional binding site.<br />
HELB binds specifically to human RPA, which enhances its ATPase and ssDNA translocase activities.<br />
Translocating HELB concomitantly clears RPA from ssDNA.</p>
The post <a href="http://www.fernandomorenoherrero.com/papers/human-helb-is-a-processive-motor-protein-which-catalyses-rpa-clearance-from-single-stranded-dna/">Human HELB is a processive motor protein which catalyses RPA clearance from single-stranded DNA</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></description>
										<content:encoded><![CDATA[<p class="wp-block-paragraph">Silvia Hormeño, Oliver J Wilkinson‡, Clara Aicart-Ramos, S Kuppa, E Antony, Mark S Dillingham*, and Fernando Moreno-Herrero F*.</p><p class="wp-block-paragraph"><strong>Abstract:</strong>&nbsp;Human DNA helicase B (HELB) is a poorly characterized helicase suggested to play both positive and negative regulatory roles in DNA replication and recombination. In this work, we used bulk and single-molecule approaches to characterize the biochemical activities of HELB protein with a particular focus on its interactions with Replication Protein A (RPA) and RPA–single-stranded DNA (ssDNA) filaments. HELB is a monomeric protein that binds tightly to ssDNA with a site size of ∼20 nucleotides. It couples ATP hydrolysis to translocation along ssDNA in the 5′ to 3′ direction accompanied by the formation of DNA loops. HELB also displays classical helicase activity, but this is very weak in the absence of an assisting force. HELB binds specifically to human RPA, which enhances its ATPase and ssDNA translocase activities but inhibits DNA unwinding. Direct observation of HELB on RPA nucleoprotein filaments shows that translocating HELB concomitantly clears RPA from ssDNA. This activity, which can allow other proteins access to ssDNA intermediates despite their shielding by RPA, may underpin the diverse roles of HELB in cellular DNA transactions.</p><p class="wp-block-paragraph"><a href="https://www.pnas.org/doi/full/10.1073/pnas.2112376119" target="_blank" rel="noreferrer noopener">LINK</a>.</p>The post <a href="http://www.fernandomorenoherrero.com/papers/human-helb-is-a-processive-motor-protein-which-catalyses-rpa-clearance-from-single-stranded-dna/">Human HELB is a processive motor protein which catalyses RPA clearance from single-stranded DNA</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></content:encoded>
					
		
		
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		<title>A molecular view of DNA flexibility</title>
		<link>http://www.fernandomorenoherrero.com/uncategorized/a-molecular-view-of-dna-flexibility/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=a-molecular-view-of-dna-flexibility</link>
		
		<dc:creator><![CDATA[Ana]]></dc:creator>
		<pubDate>Fri, 09 Jul 2021 10:28:00 +0000</pubDate>
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		<guid isPermaLink="false">http://www.fernandomorenoherrero.com/?p=2139</guid>

					<description><![CDATA[<p>Here, we review recent single-molecule experiments and molecular dynamics simulations that are providing novel insights into DNA mechanics from such a molecular perspective.</p>
The post <a href="http://www.fernandomorenoherrero.com/uncategorized/a-molecular-view-of-dna-flexibility/">A molecular view of DNA flexibility</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></description>
										<content:encoded><![CDATA[<p class="wp-block-paragraph"><a href="javascript:;">Alberto Marin-Gonzalez</a>,  <a href="javascript:;">J G Vilhena</a>, <a href="javascript:;">Ruben Perez*</a> and <a href="javascript:;">Fernando Moreno-Herrero*</a></p><p class="wp-block-paragraph">DNA dynamics can only be understood by taking into account its complex mechanical behavior at different length scales. At the micrometer level, the mechanical properties of single DNA molecules have been well-characterized by polymer models and are commonly quantified by a persistence length of 50 nm (~150 bp). However, at the base pair level (~3.4 Å), the dynamics of DNA involves complex molecular mechanisms that are still being deciphered. Here, we review recent single-molecule experiments and molecular dynamics simulations that are providing novel insights into DNA mechanics from such a molecular perspective. We first discuss recent findings on sequence-dependent DNA mechanical properties, including sequences that resist mechanical stress and sequences that can accommodate strong deformations. We then comment on the intricate effects of cytosine methylation and DNA mismatches on DNA mechanics. Finally, we review recently reported differences in the mechanical properties of DNA and double-stranded RNA, the other double-helical carrier of genetic information. A thorough examination of the recent single-molecule literature permits establishing a set of general ‘rules’ that reasonably explain the mechanics of nucleic acids at the base pair level. These simple rules offer an improved description of certain biological systems and might serve as valuable guidelines for future design of DNA and RNA nanostructures.</p><p class="wp-block-paragraph"><a href="https://www.cambridge.org/core/journals/quarterly-reviews-of-biophysics/article/molecular-view-of-dna-flexibility/E07E35F2DF75A6805D0850441E3D865B#.YOQfEy6NQ7Q.twitter" target="_blank" rel="noreferrer noopener">LINK</a></p>The post <a href="http://www.fernandomorenoherrero.com/uncategorized/a-molecular-view-of-dna-flexibility/">A molecular view of DNA flexibility</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></content:encoded>
					
		
		
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		<title>Purified Smc5/6 Complex Exhibits DNA Substrate Recognition and Compaction</title>
		<link>http://www.fernandomorenoherrero.com/papers/purified-smc5-6-complex-exhibits-dna-substrate-recognition-and-compaction/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=purified-smc5-6-complex-exhibits-dna-substrate-recognition-and-compaction</link>
		
		<dc:creator><![CDATA[Ana]]></dc:creator>
		<pubDate>Tue, 22 Dec 2020 09:51:00 +0000</pubDate>
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					<description><![CDATA[<p>Eukaryotic SMC complexes, cohesin, condensin, and Smc5/6, use ATP hydrolysis to power a plethora of functions requiring organization and restructuring of eukaryotic chromosomes in interphase and during mitosis. The Smc5/6 mechanism of action and its activity on DNA are largely unknown. Here we purified the budding yeast Smc5/6 holocomplex and characterized its core biochemical and biophysical activities.</p>
The post <a href="http://www.fernandomorenoherrero.com/papers/purified-smc5-6-complex-exhibits-dna-substrate-recognition-and-compaction/">Purified Smc5/6 Complex Exhibits DNA Substrate Recognition and Compaction</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></description>
										<content:encoded><![CDATA[<p class="wp-block-paragraph"><a href="https://www.sciencedirect.com/science/article/pii/S1097276520307905#!">Pilar Gutierrez-Escribano, Silvia Hormeño, Julene Madariaga-Marcos, Roger Solé-Soler, Francis J.O’Reilly, Kyle Morris, Clara Aicart-Ramos, Ricardo Aramayo, Alex Montoya, Holger Kramer, Juri Rappsilber<sup>, </sup>Jordi Torres-Rosell, Fernando Moreno-Herrero*, Luis Aragon*</a></p><p class="wp-block-paragraph">Eukaryotic SMC complexes, cohesin, condensin, and Smc5/6, use ATP hydrolysis to power a plethora of functions requiring organization and restructuring of eukaryotic chromosomes in interphase and during mitosis. The Smc5/6 mechanism of action and its activity on DNA are largely unknown. Here we purified the budding yeast Smc5/6 holocomplex and characterized its core biochemical and biophysical activities. Purified Smc5/6 exhibits DNA-dependent ATP hydrolysis and SUMO E3 ligase activity. We show that Smc5/6 binds DNA topologically with affinity for supercoiled and catenated DNA templates. Employing single-molecule assays to analyze the functional and dynamic characteristics of Smc5/6 bound to DNA, we show that Smc5/6 locks DNA plectonemes and can compact DNA in an ATP-dependent manner. These results demonstrate that the Smc5/6 complex recognizes DNA tertiary structures involving juxtaposed helices and might modulate DNA topology by plectoneme stabilization and local compaction.</p><p class="wp-block-paragraph"><a href="https://www.sciencedirect.com/science/article/pii/S1097276520307905" target="_blank" rel="noreferrer noopener">LINK</a></p>The post <a href="http://www.fernandomorenoherrero.com/papers/purified-smc5-6-complex-exhibits-dna-substrate-recognition-and-compaction/">Purified Smc5/6 Complex Exhibits DNA Substrate Recognition and Compaction</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></content:encoded>
					
		
		
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		<title>Double-stranded RNA bending by AU-tract sequences</title>
		<link>http://www.fernandomorenoherrero.com/papers/double-stranded-rna-bending-by-au-tract-sequences/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=double-stranded-rna-bending-by-au-tract-sequences</link>
		
		<dc:creator><![CDATA[Ana]]></dc:creator>
		<pubDate>Fri, 18 Dec 2020 09:43:00 +0000</pubDate>
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		<guid isPermaLink="false">http://www.fernandomorenoherrero.com/?p=2114</guid>

					<description><![CDATA[<p>Sequence-dependent structural deformations of the DNA double helix (dsDNA) have been extensively studied, where adenine tracts (A-tracts) provide a striking example for global bending in the molecule. However, in contrast to dsDNA, sequence-dependent structural features of dsRNA have received little attention. In this work, we demonstrate that the nucleotide sequence can induce a bend in a canonical Watson-Crick base-paired dsRNA helix.</p>
The post <a href="http://www.fernandomorenoherrero.com/papers/double-stranded-rna-bending-by-au-tract-sequences/">Double-stranded RNA bending by AU-tract sequences</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></description>
										<content:encoded><![CDATA[<p class="wp-block-paragraph"><a href="javascript:;">Alberto Marin-Gonzalez</a>, <a href="javascript:;">Clara Aicart-Ramos</a>, <a href="javascript:;">Mikel Marin-Baquero</a>,  <a href="javascript:;">Alejandro Martin-Gonzalez</a>, <a href="javascript:;">Maarit</a> <a href="javascript:;">Suomalainen</a>, <a href="javascript:;"></a><a href="javascript:;">Abhilash Kannan</a>, <a href="javascript:;"></a><a href="javascript:;">J G Vilhena</a>, <a href="javascript:;"></a><a href="javascript:;">Urs F Greber</a>, <a href="javascript:;">Fernando Moreno-Herrero*</a>, <a href="javascript:;">Ruben Perez*</a></p><p class="wp-block-paragraph">Sequence-dependent structural deformations of the DNA double helix (dsDNA) have been extensively studied, where adenine tracts (A-tracts) provide a striking example for global bending in the molecule. However, in contrast to dsDNA, sequence-dependent structural features of dsRNA have received little attention. In this work, we demonstrate that the nucleotide sequence can induce a bend in a canonical Watson-Crick base-paired dsRNA helix. Using all-atom molecular dynamics simulations, we identified a sequence motif consisting of alternating adenines and uracils, or AU-tracts, that strongly bend the RNA double-helix. This finding was experimentally validated using atomic force microscopy imaging of dsRNA molecules designed to display macroscopic curvature via repetitions of phased AU-tract motifs. At the atomic level, this novel phenomenon originates from a localized compression of the dsRNA major groove and a large propeller twist at the position of the AU-tract. Moreover, the magnitude of the bending can be modulated by changing the length of the AU-tract. Altogether, our results demonstrate the possibility of modifying the dsRNA curvature by means of its nucleotide sequence, which may be exploited in the emerging field of RNA nanotechnology and might also constitute a natural mechanism for proteins to achieve recognition of specific dsRNA sequences.</p><p class="wp-block-paragraph"><a href="https://academic.oup.com/nar/article/48/22/12917/6007656" target="_blank" rel="noreferrer noopener">LINK</a></p>The post <a href="http://www.fernandomorenoherrero.com/papers/double-stranded-rna-bending-by-au-tract-sequences/">Double-stranded RNA bending by AU-tract sequences</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></content:encoded>
					
		
		
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		<title>Characterizing microfluidic approaches for a fast and efficient reagent exchange in single-molecule studies</title>
		<link>http://www.fernandomorenoherrero.com/papers/characterizing-microfluidic-approaches-for-a-fast-and-efficient-reagent-exchange-in-single-molecule-studies/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=characterizing-microfluidic-approaches-for-a-fast-and-efficient-reagent-exchange-in-single-molecule-studies</link>
		
		<dc:creator><![CDATA[Ana]]></dc:creator>
		<pubDate>Mon, 26 Oct 2020 09:41:00 +0000</pubDate>
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					<description><![CDATA[<p>Single-molecule experiments usually take place in flow cells. This experimental approach is essential for experiments requiring a liquid environment, but is also useful to allow the exchange of reagents before or during measurements. This is crucial in experiments that need to be triggered by ligands or require a sequential addition of proteins.</p>
The post <a href="http://www.fernandomorenoherrero.com/papers/characterizing-microfluidic-approaches-for-a-fast-and-efficient-reagent-exchange-in-single-molecule-studies/">Characterizing microfluidic approaches for a fast and efficient reagent exchange in single-molecule studies</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></description>
										<content:encoded><![CDATA[<p class="wp-block-paragraph"><a href="javascript:;">Julene Madariaga-Marcos</a>, <a href="javascript:;">Roberta Corti</a>, <a href="javascript:;">Silvia Hormeño</a>, <a href="javascript:;">Fernando Moreno-Herrero</a></p><p class="wp-block-paragraph">Single-molecule experiments usually take place in flow cells. This experimental approach is essential for experiments requiring a liquid environment, but is also useful to allow the exchange of reagents before or during measurements. This is crucial in experiments that need to be triggered by ligands or require a sequential addition of proteins. Home-fabricated flow cells using two glass coverslips and a gasket made of paraffin wax are a widespread approach. The volume of the flow cell can be controlled by modifying the dimensions of the channel while the reagents are introduced using a syringe pump. In this system, high flow rates disturb the biological system, whereas lower flow rates lead to the generation of a reagent gradient in the flow cell. For very precise measurements it is thus desirable to have a very fast exchange of reagents with minimal diffusion. We propose the implementation of multistream laminar microfluidic cells with two inlets and one outlet, which achieve a minimum fluid switching time of 0.25&nbsp;s. We additionally define a phenomenological expression to predict the boundary switching time for a particular flow cell cross section. Finally, we study the potential applicability of the platform to study kinetics at the single molecule level.</p><p class="wp-block-paragraph"><a href="https://www.nature.com/articles/s41598-020-74523-w" target="_blank" rel="noreferrer noopener">LINK</a></p>The post <a href="http://www.fernandomorenoherrero.com/papers/characterizing-microfluidic-approaches-for-a-fast-and-efficient-reagent-exchange-in-single-molecule-studies/">Characterizing microfluidic approaches for a fast and efficient reagent exchange in single-molecule studies</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></content:encoded>
					
		
		
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		<title>Bulk and single-molecule analysis of a bacterial DNA2-like helicase nuclease reveals a single-stranded DNA looping motor</title>
		<link>http://www.fernandomorenoherrero.com/papers/bulk-and-single-molecule-analysis-of-a-bacterial-dna2-like-helicase-nuclease-reveals-a-single-stranded-dna-looping-motor/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=bulk-and-single-molecule-analysis-of-a-bacterial-dna2-like-helicase-nuclease-reveals-a-single-stranded-dna-looping-motor</link>
		
		<dc:creator><![CDATA[Maite]]></dc:creator>
		<pubDate>Wed, 15 Jul 2020 11:50:09 +0000</pubDate>
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					<description><![CDATA[<p>DNA2 is an essential enzyme involved in DNA replication and repair in eukaryotes. In a search for homologues of this protein, we identified and characterised Geobacillus stearothermophilus Bad, a bacterial DNA helicase–nuclease with similarity to human DNA2.</p>
The post <a href="http://www.fernandomorenoherrero.com/papers/bulk-and-single-molecule-analysis-of-a-bacterial-dna2-like-helicase-nuclease-reveals-a-single-stranded-dna-looping-motor/">Bulk and single-molecule analysis of a bacterial DNA2-like helicase nuclease reveals a single-stranded DNA looping motor</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></description>
										<content:encoded><![CDATA[<div class="wp-block-image"><figure class="aligncenter size-large is-resized"><img decoding="async" src="http://www.fernandomorenoherrero.com/wp-content/uploads/2020/07/Captura-de-pantalla-2020-07-15-a-las-10.27.20-1024x852.png" alt="" class="wp-image-2027" width="455" height="378" srcset="http://www.fernandomorenoherrero.com/wp-content/uploads/2020/07/Captura-de-pantalla-2020-07-15-a-las-10.27.20-1024x852.png 1024w, http://www.fernandomorenoherrero.com/wp-content/uploads/2020/07/Captura-de-pantalla-2020-07-15-a-las-10.27.20-600x499.png 600w, http://www.fernandomorenoherrero.com/wp-content/uploads/2020/07/Captura-de-pantalla-2020-07-15-a-las-10.27.20-300x250.png 300w, http://www.fernandomorenoherrero.com/wp-content/uploads/2020/07/Captura-de-pantalla-2020-07-15-a-las-10.27.20-768x639.png 768w, http://www.fernandomorenoherrero.com/wp-content/uploads/2020/07/Captura-de-pantalla-2020-07-15-a-las-10.27.20.png 1146w" sizes="(max-width: 455px) 100vw, 455px" /></figure></div><p class="wp-block-paragraph"><a href="javascript:;">Oliver J Wilkinson</a>,&nbsp;<a href="javascript:;">Carolina Carrasco</a>,&nbsp;<a href="javascript:;">Clara Aicart-Ramos</a>,&nbsp;<a href="javascript:;">Fernando Moreno-Herrero</a>,&nbsp;<a href="javascript:;">Mark S Dillingham</a></p><p class="wp-block-paragraph">DNA2 is an essential enzyme involved in DNA replication and repair in eukaryotes. In a search for homologues of this protein, we identified and characterised&nbsp;<em>Geobacillus stearothermophilus</em>&nbsp;Bad, a bacterial DNA helicase–nuclease with similarity to human DNA2. We show that Bad contains an Fe-S cluster and identify four cysteine residues that are likely to co-ordinate the cluster by analogy to DNA2. The purified enzyme specifically recognises ss-dsDNA junctions and possesses ssDNA-dependent ATPase, ssDNA binding, ssDNA endonuclease, 5′ to 3′ ssDNA translocase and 5′ to 3′ helicase activity. Single molecule analysis reveals that Bad is a processive DNA motor capable of moving along DNA for distances of &gt;4 kb at a rate of ∼200 bp per second at room temperature. Interestingly, as reported for the homologous human and yeast DNA2 proteins, the DNA unwinding activity of Bad is cryptic and can be unmasked by inactivating the intrinsic nuclease activity. Strikingly, our experiments show that the enzyme loops DNA while translocating, which is an emerging feature of processive DNA unwinding enzymes. The bacterial Bad enzymes will provide an excellent model system for understanding the biochemical properties of DNA2-like helicase–nucleases and DNA looping motor proteins in general.</p><p class="wp-block-paragraph"><a href="https://academic.oup.com/nar/article/doi/10.1093/nar/gkaa562/5867415" target="_blank" rel="noreferrer noopener">LINK</a></p><p class="wp-block-paragraph"></p>The post <a href="http://www.fernandomorenoherrero.com/papers/bulk-and-single-molecule-analysis-of-a-bacterial-dna2-like-helicase-nuclease-reveals-a-single-stranded-dna-looping-motor/">Bulk and single-molecule analysis of a bacterial DNA2-like helicase nuclease reveals a single-stranded DNA looping motor</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></content:encoded>
					
		
		
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		<title>Understanding the paradoxical mechanical response of in-phase A-tracts at different force regimes</title>
		<link>http://www.fernandomorenoherrero.com/papers/understanding-the-paradoxical-mechanical-response-of-in-phase-a-tracts-at-different-force-regimes/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=understanding-the-paradoxical-mechanical-response-of-in-phase-a-tracts-at-different-force-regimes</link>
		
		<dc:creator><![CDATA[Maite]]></dc:creator>
		<pubDate>Wed, 15 Jul 2020 11:41:26 +0000</pubDate>
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					<description><![CDATA[<p>A-tracts are A:T rich DNA sequences that exhibit unique structural and mechanical properties associated with several functions in vivo. The crystallographic structure of A-tracts has been well characterized. However, the mechanical properties of these sequences is controversial and their response to force remains unexplored</p>
The post <a href="http://www.fernandomorenoherrero.com/papers/understanding-the-paradoxical-mechanical-response-of-in-phase-a-tracts-at-different-force-regimes/">Understanding the paradoxical mechanical response of in-phase A-tracts at different force regimes</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></description>
										<content:encoded><![CDATA[<div class="wp-block-image"><figure class="aligncenter size-large is-resized"><img decoding="async" src="http://www.fernandomorenoherrero.com/wp-content/uploads/2020/07/Captura-de-pantalla-2020-07-15-a-las-10.39.34-1024x902.png" alt="" class="wp-image-2034" width="507" height="446" srcset="http://www.fernandomorenoherrero.com/wp-content/uploads/2020/07/Captura-de-pantalla-2020-07-15-a-las-10.39.34-1024x902.png 1024w, http://www.fernandomorenoherrero.com/wp-content/uploads/2020/07/Captura-de-pantalla-2020-07-15-a-las-10.39.34-600x528.png 600w, http://www.fernandomorenoherrero.com/wp-content/uploads/2020/07/Captura-de-pantalla-2020-07-15-a-las-10.39.34-300x264.png 300w, http://www.fernandomorenoherrero.com/wp-content/uploads/2020/07/Captura-de-pantalla-2020-07-15-a-las-10.39.34-768x676.png 768w, http://www.fernandomorenoherrero.com/wp-content/uploads/2020/07/Captura-de-pantalla-2020-07-15-a-las-10.39.34.png 1140w" sizes="(max-width: 507px) 100vw, 507px" /></figure></div><p class="wp-block-paragraph"><a href="javascript:;">Alberto Marin-Gonzalez</a>,&nbsp;<a href="javascript:;">Cesar L Pastrana</a>,&nbsp;<a href="javascript:;">Rebeca Bocanegra</a>,&nbsp;<a href="javascript:;">Alejandro Martín-González</a>,&nbsp;<a href="javascript:;">J G Vilhena</a>,&nbsp;<a href="javascript:;">Rubén Pérez</a>,&nbsp;<a href="javascript:;">Borja Ibarra</a>,&nbsp;<a href="javascript:;">Clara Aicart-Ramos</a>,&nbsp;<a href="javascript:;">Fernando Moreno-Herrero</a></p><p class="wp-block-paragraph">A-tracts are A:T rich DNA sequences that exhibit unique structural and mechanical properties associated with several functions&nbsp;<em>in vivo</em>. The crystallographic structure of A-tracts has been well characterized. However, the mechanical properties of these sequences is controversial and their response to force remains unexplored. Here, we rationalize the mechanical properties of in-phase A-tracts present in the&nbsp;<em>Caenorhabditis elegans</em>&nbsp;genome over a wide range of external forces, using single-molecule experiments and theoretical polymer models. Atomic Force Microscopy imaging shows that A-tracts induce long-range (∼200 nm) bending, which originates from an intrinsically bent structure rather than from larger bending flexibility. These data are well described with a theoretical model based on the worm-like chain model that includes intrinsic bending. Magnetic tweezers experiments show that the mechanical response of A-tracts and arbitrary DNA sequences have a similar dependence with monovalent salt supporting that the observed A-tract bend is intrinsic to the sequence. Optical tweezers experiments reveal a high stretch modulus of the A-tract sequences in the enthalpic regime. Our work rationalizes the complex multiscale flexibility of A-tracts, providing a physical basis for the versatile character of these sequences inside the cell.</p><p class="wp-block-paragraph"><a href="https://academic.oup.com/nar/article/48/9/5024/5819597?guestAccessKey=43ba63f7-cc02-4c69-82c0-75b01c12e752" target="_blank" rel="noreferrer noopener">LINK</a></p>The post <a href="http://www.fernandomorenoherrero.com/papers/understanding-the-paradoxical-mechanical-response-of-in-phase-a-tracts-at-different-force-regimes/">Understanding the paradoxical mechanical response of in-phase A-tracts at different force regimes</a> first appeared on <a href="http://www.fernandomorenoherrero.com">Fernando Moreno Herrero Lab</a>.]]></content:encoded>
					
		
		
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