148 research outputs found
Euthanasia: agreeing to disagree?
In discussions about the legalisation of active, voluntary euthanasia it is sometimes claimed that what should happen in a liberal society is that the two sides in the debate âagree to disagreeâ. This paper explores what is entailed by agreeing to disagree and shows that this is considerably more complicated than what is usually believed to be the case. Agreeing to disagree is philosophically problematic and will often lead to an unstable compromise
Homeland Security and Wireless Telecommunications: The Continuing Evolution of Regulation
Since the grant of the first Commercial Mobile Radio Service ( CMRS ) license over twenty years ago, the wireless industry has grown from a service of convenience to one that is indispensable. What once was a device used for sporadic phone calls now is viewed by many Americans as a source of invaluable communication and security. As the wireless industry matured, government officials turned to the mobile phone as a way to make the United States safer. E-9 11, the Communications Assistance for Law Enforcement Act ( CALEA ), Wireless Priority Service ( WPS ), and Outage Reporting all were initiated on the wireless platform in the name of safety. The FCC implementation proceedings for each of these initiatives have differed markedly. In an advanced technology area such as wireless, government goals may best be achieved by relying on industry experts, because the technology is so sophisticated and constantly developing that the legislative and regulatory process at times cannot keep pace. This Article reviews wireless public safety and Homeland Security initiatives in three phases and explores the evolution of Homeland Security regulation of the wireless industry
Homeland Security and Wireless Telecommunications: The Continuing Evolution of Regulation
Since the grant of the first Commercial Mobile Radio Service ( CMRS ) license over twenty years ago, the wireless industry has grown from a service of convenience to one that is indispensable. What once was a device used for sporadic phone calls now is viewed by many Americans as a source of invaluable communication and security. As the wireless industry matured, government officials turned to the mobile phone as a way to make the United States safer. E-9 11, the Communications Assistance for Law Enforcement Act ( CALEA ), Wireless Priority Service ( WPS ), and Outage Reporting all were initiated on the wireless platform in the name of safety. The FCC implementation proceedings for each of these initiatives have differed markedly. In an advanced technology area such as wireless, government goals may best be achieved by relying on industry experts, because the technology is so sophisticated and constantly developing that the legislative and regulatory process at times cannot keep pace. This Article reviews wireless public safety and Homeland Security initiatives in three phases and explores the evolution of Homeland Security regulation of the wireless industry
Xist recruits the X chromosome to the nuclear lamina to enable chromosome-wide silencing
The Xist long noncoding RNA orchestrates X chromosome inactivation, a process that entails chromosome-wide silencing and remodeling of the three-dimensional (3D) structure of the X chromosome. Yet, it remains unclear whether these changes in nuclear structure are mediated by Xist and whether they are required for silencing. Here, we show that Xist directly interacts with the Lamin B receptor, an integral component of the nuclear lamina, and that this interaction is required for Xist-mediated silencing by recruiting the inactive X to the nuclear lamina and by doing so enables Xist to spread to actively transcribed genes across the X. Our results demonstrate that lamina recruitment changes the 3D structure of DNA, enabling Xist and its silencing proteins to spread across the X to silence transcription
RNA-RNA Interactions Enable Specific Targeting of Noncoding RNAs to Nascent Pre-mRNAs and Chromatin Sites
Intermolecular RNA-RNA interactions are used by many noncoding RNAs (ncRNAs) to achieve their diverse functions. To identify these contacts, we developed a method based on RNA antisense purification to systematically map RNA-RNA interactions (RAP-RNA) and applied it to investigate two ncRNAs implicated in RNA processing: U1 small nuclear RNA, a component of the spliceosome, and Malat1, a large ncRNA that localizes to nuclear speckles. U1 and Malat1 interact with nascent transcripts through distinct targeting mechanisms. Using differential crosslinking, we confirmed that U1 directly hybridizes to 5Ⲡsplice sites and 5Ⲡsplice site motifs throughout introns and found that Malat1 interacts with pre-mRNAs indirectly through protein intermediates. Interactions with nascent pre-mRNAs cause U1 and Malat1 to localize proximally to chromatin at active genes, demonstrating that ncRNAs can use RNA-RNA interactions to target specific pre-mRNAs and genomic sites. RAP-RNA is sensitive to lower abundance RNAs as well, making it generally applicable for investigating ncRNAs
RNA promotes the formation of spatial compartments in the nucleus
The nucleus is a highly organized arrangement of RNA, DNA, and protein molecules that are compartmentalized within three-dimensional (3D) structures involved in shared functional and regulatory processes. Although RNA has long been proposed to play a global role in organizing nuclear structure, exploring the role of RNA in shaping nuclear structure has remained a challenge because no existing methods can simultaneously measure RNA-RNA, RNA-DNA, and DNA-DNA contacts within 3D structures. To address this, we developed RNA & DNA SPRITE (RD-SPRITE) to comprehensively map the location of all RNAs relative to DNA and other RNAs. Using this approach, we identify many RNAs that are localized near their transcriptional loci (RNA-DNA) together with other diffusible ncRNAs (RNA-RNA) within higher-order DNA structures (DNA-DNA). These RNA-chromatin compartments span three major classes of nuclear functions: RNA processing (including ribosome biogenesis, mRNA splicing, snRNA biogenesis, and histone mRNA processing), heterochromatin assembly, and gene regulation. More generally, we identify hundreds of ncRNAs that form stable nuclear compartments in spatial proximity to their transcriptional loci. We find that dozens of nuclear compartments require RNA to guide protein regulators into these 3D structures, and focusing on several ncRNAs, we show that these ncRNAs specifically regulate heterochromatin assembly and the expression of genes contained within these compartments. Together, our results demonstrate a unique mechanism by which RNA acts to shape nuclear structure by forming high concentration territories immediately upon transcription, binding to diffusible regulators, and guiding them into spatial compartments to regulate a wide range of essential nuclear functions
The Xist lncRNA interacts directly with SHARP to silence transcription through HDAC3
Many long non-coding RNAs (lncRNAs) affect gene expression, but the mechanisms by which they act are still largely unknown. One of the best-studied lncRNAs is Xist, which is required for transcriptional silencing of one X chromosome during development in female mammals. Despite extensive efforts to define the mechanism of Xist-mediated transcriptional silencing, we still do not know any proteins required for this role. The main challenge is that there are currently no methods to comprehensively define the proteins that directly interact with a lncRNA in the cell. Here we develop a method to purify a lncRNA from cells and identify proteins interacting with it directly using quantitative mass spectrometry. We identify ten proteins that specifically associate with Xist, three of these proteinsâSHARP, SAF-A and LBRâare required for Xist-mediated transcriptional silencing. We show that SHARP, which interacts with the SMRT co-repressor that activates HDAC3, is not only essential for silencing, but is also required for the exclusion of RNA polymerase II (Pol II) from the inactive X. Both SMRT and HDAC3 are also required for silencing and Pol II exclusion. In addition to silencing transcription, SHARP and HDAC3 are required for Xist-mediated recruitment of the polycomb repressive complex 2 (PRC2) across the X chromosome. Our results suggest that Xist silences transcription by directly interacting with SHARP, recruiting SMRT, activating HDAC3, and deacetylating histones to exclude Pol II across the X chromosome
RNA promotes the formation of spatial compartments in the nucleus
The nucleus is a highly organized arrangement of RNA, DNA, and protein molecules that are compartmentalized within three-dimensional (3D) structures involved in shared functional and regulatory processes. Although RNA has long been proposed to play a global role in organizing nuclear structure, exploring the role of RNA in shaping nuclear structure has remained a challenge because no existing methods can simultaneously measure RNA-RNA, RNA-DNA, and DNA-DNA contacts within 3D structures. To address this, we developed RNA & DNA SPRITE (RD-SPRITE) to comprehensively map the location of all RNAs relative to DNA and other RNAs. Using this approach, we identify many RNAs that are localized near their transcriptional loci (RNA-DNA) together with other diffusible ncRNAs (RNA-RNA) within higher-order DNA structures (DNA-DNA). These RNA-chromatin compartments span three major classes of nuclear functions: RNA processing (including ribosome biogenesis, mRNA splicing, snRNA biogenesis, and histone mRNA processing), heterochromatin assembly, and gene regulation. More generally, we identify hundreds of ncRNAs that form stable nuclear compartments in spatial proximity to their transcriptional loci. We find that dozens of nuclear compartments require RNA to guide protein regulators into these 3D structures, and focusing on several ncRNAs, we show that these ncRNAs specifically regulate heterochromatin assembly and the expression of genes contained within these compartments. Together, our results demonstrate a unique mechanism by which RNA acts to shape nuclear structure by forming high concentration territories immediately upon transcription, binding to diffusible regulators, and guiding them into spatial compartments to regulate a wide range of essential nuclear functions
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