Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 20 de 57.847
Filtrar
Mais filtros

Intervalo de ano de publicação
1.
Cell ; 187(3): 513-516, 2024 Feb 01.
Artigo em Inglês | MEDLINE | ID: mdl-38306977

RESUMO

In November 2023, structural biologists from different countries and different disciplines gathered at the Cell Symposium: Structural biology from the nanoscale to cellular mesoscale to discuss recent breakthroughs, including structures of proteins and macromolecular complexes in a cellular context as well as virus structures obtained by using different techniques. At the symposium, Cell editor Jia Cheng and Karin Kühnel, editor-in-chief of Structure, spoke with Drs. Beili Wu, Mingjie Zhang, and Zihe Rao about their experiences doing structural biology research in China and about their perspectives for the future. An edited transcript of the conversation is presented below, and the full conversation is available with the article online.


Assuntos
Biologia Molecular , Substâncias Macromoleculares , China
2.
Cell ; 187(3): 545-562, 2024 Feb 01.
Artigo em Inglês | MEDLINE | ID: mdl-38306981

RESUMO

Determining the structure and mechanisms of all individual functional modules of cells at high molecular detail has often been seen as equal to understanding how cells work. Recent technical advances have led to a flush of high-resolution structures of various macromolecular machines, but despite this wealth of detailed information, our understanding of cellular function remains incomplete. Here, we discuss present-day limitations of structural biology and highlight novel technologies that may enable us to analyze molecular functions directly inside cells. We predict that the progression toward structural cell biology will involve a shift toward conceptualizing a 4D virtual reality of cells using digital twins. These will capture cellular segments in a highly enriched molecular detail, include dynamic changes, and facilitate simulations of molecular processes, leading to novel and experimentally testable predictions. Transferring biological questions into algorithms that learn from the existing wealth of data and explore novel solutions may ultimately unveil how cells work.


Assuntos
Biologia , Biologia Computacional , Substâncias Macromoleculares/química
3.
Annu Rev Biochem ; 91: 321-351, 2022 06 21.
Artigo em Inglês | MEDLINE | ID: mdl-35287477

RESUMO

The cellular interior is composed of a variety of microenvironments defined by distinct local compositions and composition-dependent intermolecular interactions. We review the various types of nonspecific interactions between proteins and between proteins and other macromolecules and supramolecular structures that influence the state of association and functional properties of a given protein existing within a particular microenvironment at a particular point in time. The present state of knowledge is summarized, and suggestions for fruitful directions of research are offered.


Assuntos
Bioquímica , Proteínas , Substâncias Macromoleculares , Proteínas/química , Proteínas/genética
4.
Nat Rev Mol Cell Biol ; 25(3): 187-211, 2024 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-37957331

RESUMO

Intrinsically disordered protein regions exist in a collection of dynamic interconverting conformations that lack a stable 3D structure. These regions are structurally heterogeneous, ubiquitous and found across all kingdoms of life. Despite the absence of a defined 3D structure, disordered regions are essential for cellular processes ranging from transcriptional control and cell signalling to subcellular organization. Through their conformational malleability and adaptability, disordered regions extend the repertoire of macromolecular interactions and are readily tunable by their structural and chemical context, making them ideal responders to regulatory cues. Recent work has led to major advances in understanding the link between protein sequence and conformational behaviour in disordered regions, yet the link between sequence and molecular function is less well defined. Here we consider the biochemical and biophysical foundations that underlie how and why disordered regions can engage in productive cellular functions, provide examples of emerging concepts and discuss how protein disorder contributes to intracellular information processing and regulation of cellular function.


Assuntos
Proteínas Intrinsicamente Desordenadas , Proteínas Intrinsicamente Desordenadas/metabolismo , Conformação Proteica , Sequência de Aminoácidos , Substâncias Macromoleculares
5.
Cell ; 182(4): 799-811, 2020 08 20.
Artigo em Inglês | MEDLINE | ID: mdl-32822572

RESUMO

Clustering of macromolecules is a fundamental cellular device underlying diverse biological processes that require high-avidity binding to effectors and substrates. Often, this involves a transition between diffuse and locally concentrated molecules akin to biophysical phase separation observable in vitro. One simple mechanistic paradigm underlying physiologically relevant phase transitions in cells is the reversible head-to-tail polymerization of hub proteins into filaments that are cross-linked by dimerization into dynamic three-dimensional molecular condensates. While many diverse folds and motifs can mediate dimerization, only two structurally distinct domains have been discovered so far to undergo head-to-tail polymerization, though these are widespread among all living kingdoms.


Assuntos
Peptídeos e Proteínas de Sinalização Intracelular/metabolismo , Substâncias Macromoleculares/metabolismo , Animais , Proteínas de Ligação a DNA/química , Proteínas de Ligação a DNA/metabolismo , Humanos , Peptídeos e Proteínas de Sinalização Intracelular/química , Proteínas Intrinsicamente Desordenadas/química , Proteínas Intrinsicamente Desordenadas/metabolismo , Substâncias Macromoleculares/química , Polimerização , Domínios Proteicos , Via de Sinalização Wnt
6.
Cell ; 183(7): 1785-1800.e26, 2020 12 23.
Artigo em Inglês | MEDLINE | ID: mdl-33333025

RESUMO

All proteins interact with other cellular components to fulfill their function. While tremendous progress has been made in the identification of protein complexes, their assembly and dynamics remain difficult to characterize. Here, we present a high-throughput strategy to analyze the native assembly kinetics of protein complexes. We apply our approach to characterize the co-assembly for 320 pairs of nucleoporins (NUPs) constituting the ≈50 MDa nuclear pore complex (NPC) in yeast. Some NUPs co-assemble fast via rapid exchange whereas others require lengthy maturation steps. This reveals a hierarchical principle of NPC biogenesis where individual subcomplexes form on a minute timescale and then co-assemble from center to periphery in a ∼1 h-long maturation process. Intriguingly, the NUP Mlp1 stands out as joining very late and associating preferentially with aged NPCs. Our approach is readily applicable beyond the NPC, making it possible to analyze the intracellular dynamics of a variety of multiprotein assemblies.


Assuntos
Substâncias Macromoleculares/metabolismo , Complexos Multiproteicos/metabolismo , Saccharomyces cerevisiae/metabolismo , Coloração e Rotulagem , Bioensaio , Cinética , Modelos Biológicos , Poro Nuclear/metabolismo , Proteínas de Saccharomyces cerevisiae/metabolismo , Fatores de Tempo
7.
Annu Rev Biochem ; 88: 35-58, 2019 06 20.
Artigo em Inglês | MEDLINE | ID: mdl-30601681

RESUMO

X-ray free-electron lasers provide femtosecond-duration pulses of hard X-rays with a peak brightness approximately one billion times greater than is available at synchrotron radiation facilities. One motivation for the development of such X-ray sources was the proposal to obtain structures of macromolecules, macromolecular complexes, and virus particles, without the need for crystallization, through diffraction measurements of single noncrystalline objects. Initial explorations of this idea and of outrunning radiation damage with femtosecond pulses led to the development of serial crystallography and the ability to obtain high-resolution structures of small crystals without the need for cryogenic cooling. This technique allows the understanding of conformational dynamics and enzymatics and the resolution of intermediate states in reactions over timescales of 100 fs to minutes. The promise of more photons per atom recorded in a diffraction pattern than electrons per atom contributing to an electron micrograph may enable diffraction measurements of single molecules, although challenges remain.


Assuntos
Elétrons , Substâncias Macromoleculares/ultraestrutura , Fótons , Vírion/ultraestrutura , Difração de Raios X/métodos , Cristalização/instrumentação , Cristalização/métodos , Cristalografia por Raios X/história , Cristalografia por Raios X/instrumentação , Cristalografia por Raios X/métodos , História do Século XX , História do Século XXI , Lasers/história , Síncrotrons/instrumentação , Difração de Raios X/história , Difração de Raios X/instrumentação , Raios X
8.
Nat Rev Mol Cell Biol ; 22(3): 215-235, 2021 03.
Artigo em Inglês | MEDLINE | ID: mdl-33169001

RESUMO

Biomolecular condensates are found throughout eukaryotic cells, including in the nucleus, in the cytoplasm and on membranes. They are also implicated in a wide range of cellular functions, organizing molecules that act in processes ranging from RNA metabolism to signalling to gene regulation. Early work in the field focused on identifying condensates and understanding how their physical properties and regulation arise from molecular constituents. Recent years have brought a focus on understanding condensate functions. Studies have revealed functions that span different length scales: from molecular (modulating the rates of chemical reactions) to mesoscale (organizing large structures within cells) to cellular (facilitating localization of cellular materials and homeostatic responses). In this Roadmap, we discuss representative examples of biochemical and cellular functions of biomolecular condensates from the recent literature and organize these functions into a series of non-exclusive classes across the different length scales. We conclude with a discussion of areas of current interest and challenges in the field, and thoughts about how progress may be made to further our understanding of the widespread roles of condensates in cell biology.


Assuntos
Substâncias Macromoleculares , Complexos Multiproteicos/fisiologia , Animais , Fenômenos Bioquímicos , Fenômenos Fisiológicos Celulares , Citoplasma/química , Citoplasma/genética , Citoplasma/metabolismo , Células Eucarióticas/química , Células Eucarióticas/metabolismo , Células Eucarióticas/fisiologia , Humanos , Substâncias Macromoleculares/química , Substâncias Macromoleculares/metabolismo , Complexos Multiproteicos/química , Organelas/química , Organelas/genética , Organelas/metabolismo , Agregados Proteicos/fisiologia
9.
Nat Rev Mol Cell Biol ; 22(3): 196-213, 2021 03.
Artigo em Inglês | MEDLINE | ID: mdl-33510441

RESUMO

Biomolecular condensates are membraneless intracellular assemblies that often form via liquid-liquid phase separation and have the ability to concentrate biopolymers. Research over the past 10 years has revealed that condensates play fundamental roles in cellular organization and physiology, and our understanding of the molecular principles, components and forces underlying their formation has substantially increased. Condensate assembly is tightly regulated in the intracellular environment, and failure to control condensate properties, formation and dissolution can lead to protein misfolding and aggregation, which are often the cause of ageing-associated diseases. In this Review, we describe the mechanisms and regulation of condensate assembly and dissolution, highlight recent advances in understanding the role of biomolecular condensates in ageing and disease, and discuss how cellular stress, ageing-related loss of homeostasis and a decline in protein quality control may contribute to the formation of aberrant, disease-causing condensates. Our improved understanding of condensate pathology provides a promising path for the treatment of protein aggregation diseases.


Assuntos
Envelhecimento , Substâncias Macromoleculares/química , Complexos Multiproteicos/fisiologia , Agregação Patológica de Proteínas/etiologia , Estresse Fisiológico/fisiologia , Envelhecimento/metabolismo , Envelhecimento/patologia , Animais , Fenômenos Fisiológicos Celulares , Humanos , Substâncias Macromoleculares/metabolismo , Agregados Proteicos/fisiologia , Agregação Patológica de Proteínas/metabolismo
10.
Nat Rev Mol Cell Biol ; 22(3): 183-195, 2021 03.
Artigo em Inglês | MEDLINE | ID: mdl-32632317

RESUMO

Biomolecular condensation partitions cellular contents and has important roles in stress responses, maintaining homeostasis, development and disease. Many nuclear and cytoplasmic condensates are rich in RNA and RNA-binding proteins (RBPs), which undergo liquid-liquid phase separation (LLPS). Whereas the role of RBPs in condensates has been well studied, less attention has been paid to the contribution of RNA to LLPS. In this Review, we discuss the role of RNA in biomolecular condensation and highlight considerations for designing condensate reconstitution experiments. We focus on RNA properties such as composition, length, structure, modifications and expression level. These properties can modulate the biophysical features of native condensates, including their size, shape, viscosity, liquidity, surface tension and composition. We also discuss the role of RNA-protein condensates in development, disease and homeostasis, emphasizing how their properties and function can be determined by RNA. Finally, we discuss the multifaceted cellular functions of biomolecular condensates, including cell compartmentalization through RNA transport and localization, supporting catalytic processes, storage and inheritance of specific molecules, and buffering noise and responding to stress.


Assuntos
Substâncias Macromoleculares/química , Complexos Multiproteicos/química , Complexos Multiproteicos/fisiologia , RNA/fisiologia , Animais , Fenômenos Fisiológicos Celulares , Fenômenos Químicos , Humanos , Substâncias Macromoleculares/metabolismo , Complexos Multiproteicos/metabolismo , Agregados Proteicos/fisiologia , Proteínas de Ligação a RNA/metabolismo , Proteínas de Ligação a RNA/fisiologia
11.
Cell ; 173(3): 693-705.e22, 2018 04 19.
Artigo em Inglês | MEDLINE | ID: mdl-29677513

RESUMO

Liquid-liquid phase separation (LLPS) is believed to underlie formation of biomolecular condensates, cellular compartments that concentrate macromolecules without surrounding membranes. Physical mechanisms that control condensate formation/dissolution are poorly understood. The RNA-binding protein fused in sarcoma (FUS) undergoes LLPS in vitro and associates with condensates in cells. We show that the importin karyopherin-ß2/transportin-1 inhibits LLPS of FUS. This activity depends on tight binding of karyopherin-ß2 to the C-terminal proline-tyrosine nuclear localization signal (PY-NLS) of FUS. Nuclear magnetic resonance (NMR) analyses reveal weak interactions of karyopherin-ß2 with sequence elements and structural domains distributed throughout the entirety of FUS. Biochemical analyses demonstrate that most of these same regions also contribute to LLPS of FUS. The data lead to a model where high-affinity binding of karyopherin-ß2 to the FUS PY-NLS tethers the proteins together, allowing multiple, distributed weak intermolecular contacts to disrupt FUS self-association, blocking LLPS. Karyopherin-ß2 may act analogously to control condensates in diverse cellular contexts.


Assuntos
Transporte Ativo do Núcleo Celular , Sinais de Localização Nuclear , Proteína FUS de Ligação a RNA/química , beta Carioferinas/química , Sítios de Ligação , Degeneração Lobar Frontotemporal/metabolismo , Humanos , Carioferinas/metabolismo , Luz , Extração Líquido-Líquido , Substâncias Macromoleculares , Espectroscopia de Ressonância Magnética , Mutação , Nefelometria e Turbidimetria , Ligação Proteica , Domínios Proteicos , RNA/química , Espalhamento de Radiação , Temperatura
12.
Mol Cell ; 84(9): 1783-1801.e7, 2024 May 02.
Artigo em Inglês | MEDLINE | ID: mdl-38614097

RESUMO

Liquid-liquid phase separation (LLPS) of putative assembly scaffolds has been proposed to drive the biogenesis of membraneless compartments. LLPS scaffolds are usually identified through in vitro LLPS assays with single macromolecules (homotypic), but the predictive value of these assays remains poorly characterized. Here, we apply a strategy to evaluate the robustness of homotypic LLPS assays. When applied to the chromosomal passenger complex (CPC), which undergoes LLPS in vitro and localizes to centromeres to promote chromosome biorientation, LLPS propensity in vitro emerged as an unreliable predictor of subcellular localization. In vitro CPC LLPS in aqueous buffers was enhanced by commonly used crowding agents. Conversely, diluted cytomimetic media dissolved condensates of the CPC and of several other proteins. We also show that centromeres do not seem to nucleate LLPS, nor do they promote local, spatially restrained LLPS of the CPC. Our strategy can be adapted to purported LLPS scaffolds of other membraneless compartments.


Assuntos
Centrômero , Centrômero/metabolismo , Substâncias Macromoleculares/metabolismo , Substâncias Macromoleculares/química , Proteínas Cromossômicas não Histona/metabolismo , Proteínas Cromossômicas não Histona/genética , Segregação de Cromossomos , Saccharomyces cerevisiae/metabolismo , Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/genética , Humanos , Separação de Fases
14.
Annu Rev Biochem ; 84: 499-517, 2015.
Artigo em Inglês | MEDLINE | ID: mdl-25747402

RESUMO

About 20 years ago, the first three-dimensional (3D) reconstructions at subnanometer (<10-Å) resolution of an icosahedral virus assembly were obtained by cryogenic electron microscopy (cryo-EM) and single-particle analysis. Since then, thousands of structures have been determined to resolutions ranging from 30 Å to near atomic (<4 Å). Almost overnight, the recent development of direct electron detectors and the attendant improvement in analysis software have advanced the technology considerably. Near-atomic-resolution reconstructions can now be obtained, not only for megadalton macromolecular complexes or highly symmetrical assemblies but also for proteins of only a few hundred kilodaltons. We discuss the developments that led to this breakthrough in high-resolution structure determination by cryo-EM and point to challenges that lie ahead.


Assuntos
Microscopia Crioeletrônica/métodos , Microscopia Crioeletrônica/instrumentação , Células Eucarióticas/ultraestrutura , Substâncias Macromoleculares/ultraestrutura , Modelos Moleculares , Ribossomos/ultraestrutura , Software
15.
Nature ; 628(8006): 47-56, 2024 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-38570716

RESUMO

Most life scientists would agree that understanding how cellular processes work requires structural knowledge about the macromolecules involved. For example, deciphering the double-helical nature of DNA revealed essential aspects of how genetic information is stored, copied and repaired. Yet, being reductionist in nature, structural biology requires the purification of large amounts of macromolecules, often trimmed off larger functional units. The advent of cryogenic electron microscopy (cryo-EM) greatly facilitated the study of large, functional complexes and generally of samples that are hard to express, purify and/or crystallize. Nevertheless, cryo-EM still requires purification and thus visualization outside of the natural context in which macromolecules operate and coexist. Conversely, cell biologists have been imaging cells using a number of fast-evolving techniques that keep expanding their spatial and temporal reach, but always far from the resolution at which chemistry can be understood. Thus, structural and cell biology provide complementary, yet unconnected visions of the inner workings of cells. Here we discuss how the interplay between cryo-EM and cryo-electron tomography, as a connecting bridge to visualize macromolecules in situ, holds great promise to create comprehensive structural depictions of macromolecules as they interact in complex mixtures or, ultimately, inside the cell itself.


Assuntos
Biologia Celular , Células , Microscopia Crioeletrônica , Tomografia com Microscopia Eletrônica , Microscopia Crioeletrônica/métodos , Microscopia Crioeletrônica/tendências , Tomografia com Microscopia Eletrônica/métodos , Tomografia com Microscopia Eletrônica/tendências , Substâncias Macromoleculares/análise , Substâncias Macromoleculares/química , Substâncias Macromoleculares/metabolismo , Substâncias Macromoleculares/ultraestrutura , Biologia Celular/instrumentação , Células/química , Células/citologia , Células/metabolismo , Células/ultraestrutura , Humanos
16.
Mol Cell ; 82(19): 3693-3711.e10, 2022 10 06.
Artigo em Inglês | MEDLINE | ID: mdl-36108633

RESUMO

Phase separation can concentrate biomolecules and accelerate reactions. However, the mechanisms and principles connecting this mesoscale organization to signaling dynamics are difficult to dissect because of the pleiotropic effects associated with disrupting endogenous condensates. To address this limitation, we engineered new phosphorylation reactions within synthetic condensates. We generally found increased activity and broadened kinase specificity. Phosphorylation dynamics within condensates were rapid and could drive cell-cycle-dependent localization changes. High client concentration within condensates was important but not the main factor for efficient phosphorylation. Rather, the availability of many excess client-binding sites together with a flexible scaffold was crucial. Phosphorylation within condensates was also modulated by changes in macromolecular crowding. Finally, the phosphorylation of the Alzheimer's-disease-associated protein Tau by cyclin-dependent kinase 2 was accelerated within condensates. Thus, condensates enable new signaling connections and can create sensors that respond to the biophysical properties of the cytoplasm.


Assuntos
Transdução de Sinais , Proteínas tau , Quinase 2 Dependente de Ciclina/metabolismo , Citoplasma/metabolismo , Humanos , Substâncias Macromoleculares/metabolismo , Proteínas tau/genética , Proteínas tau/metabolismo
17.
Annu Rev Biochem ; 83: 159-64, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-24606145

RESUMO

This article introduces three reviews on the theme of circadian rhythms.


Assuntos
Relógios Circadianos , Ritmo Circadiano , Animais , Biologia/métodos , Biologia/tendências , Humanos , Cinética , Substâncias Macromoleculares
18.
Annu Rev Biochem ; 83: 129-57, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-24606135

RESUMO

Numerous proteins, including cytokines and chemokines, enzymes and enzyme inhibitors, extracellular matrix proteins, and membrane receptors, bind heparin. Although they are traditionally classified as heparin-binding proteins, under normal physiological conditions these proteins actually interact with the heparan sulfate chains of one or more membrane or extracellular proteoglycans. Thus, they are more appropriately classified as heparan sulfate-binding proteins (HSBPs). This review provides an overview of the various modes of interaction between heparan sulfate and HSBPs, emphasizing biochemical and structural insights that improve our understanding of the many biological functions of heparan sulfate.


Assuntos
Heparitina Sulfato/química , Proteínas/química , Proteoglicanas/química , Animais , Sítios de Ligação , Carboidratos/química , Matriz Extracelular/metabolismo , Glucuronidase/química , Humanos , Ligação de Hidrogênio , Ligantes , Substâncias Macromoleculares , Oligossacarídeos/química , Ligação Proteica , Mapeamento de Interação de Proteínas , Estrutura Secundária de Proteína
19.
Annu Rev Biochem ; 83: 291-315, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-24905784

RESUMO

Large macromolecular assemblies, so-called molecular machines, are critical to ensuring proper cellular function. Understanding how proper function is achieved at the atomic level is crucial to advancing multiple avenues of biomedical research. Biophysical studies often include X-ray diffraction and cryo-electron microscopy, providing detailed structural descriptions of these machines. However, their inherent flexibility has complicated an understanding of the relation between structure and function. Solution NMR spectroscopy is well suited to the study of such dynamic complexes, and continued developments have increased size boundaries; insights into function have been obtained for complexes with masses as large as 1 MDa. We highlight methyl-TROSY (transverse relaxation optimized spectroscopy) NMR, which enables the study of such large systems, and include examples of applications to several cellular machines. We show how this emerging technique contributes to an understanding of cellular function and the role of molecular plasticity in regulating an array of biochemical activities.


Assuntos
Espectroscopia de Ressonância Magnética/métodos , Sítio Alostérico , Animais , Proteínas de Bactérias/química , Domínio Catalítico , Exossomos , Proteína HMGN2/química , Proteínas de Choque Térmico/química , Humanos , Concentração de Íons de Hidrogênio , Substâncias Macromoleculares/química , Nucleossomos/química , Canais de Potássio/química , Complexo de Endopeptidases do Proteassoma/química , Conformação Proteica , Proteínas/química
20.
Genes Dev ; 36(15-16): 876-886, 2022 08 01.
Artigo em Inglês | MEDLINE | ID: mdl-36207140

RESUMO

Nucleoli are the major cellular compartments for the synthesis of rRNA and assembly of ribosomes, the macromolecular complexes responsible for protein synthesis. Given the abundance of ribosomes, there is a huge demand for rRNA, which indeed constitutes ∼80% of the mass of RNA in the cell. Thus, nucleoli are characterized by extensive transcription of multiple rDNA loci by the dedicated polymerase, RNA polymerase (Pol) I. However, in addition to producing rRNAs, there is considerable additional transcription in nucleoli by RNA Pol II as well as Pol I, producing multiple noncoding (nc) and, in one instance, coding RNAs. In this review, we discuss important features of these transcripts, which often appear species-specific and reflect transcription antisense to pre-rRNA by Pol II and within the intergenic spacer regions on both strands by both Pol I and Pol II. We discuss how expression of these RNAs is regulated, their propensity to form cotranscriptional R loops, and how they modulate rRNA transcription, nucleolar structure, and cellular homeostasis more generally.


Assuntos
RNA Polimerase II , Precursores de RNA , Nucléolo Celular/genética , Nucléolo Celular/metabolismo , DNA Intergênico , DNA Ribossômico/genética , DNA Ribossômico/metabolismo , Homeostase/genética , Substâncias Macromoleculares/metabolismo , RNA Polimerase I/genética , RNA Polimerase I/metabolismo , RNA Polimerase II/metabolismo , Precursores de RNA/metabolismo , RNA Ribossômico/genética , RNA Ribossômico/metabolismo , Transcrição Gênica
SELEÇÃO DE REFERÊNCIAS
DETALHE DA PESQUISA