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190 peer-reviewed articles • 18,666 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
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1H3.3 deposition counteracts the replication-dependent enrichment of H3.1 at chromocenters in embryonic stem cells11.04Citations (PDF)
2Disordered regions and folded modules in CAF-1 promote histone deposition in Schizosaccharomyces pombe
ELife, 2024, 12,
1.01Citations (PDF)
3Regulation of replicative histone RNA metabolism by the histone chaperone ASF1
Molecular Cell, 2024, 84, 791-801.e6
8.79Citations (PDF)
4Histone H3 Variants in the Multiverse of Cancer2.73Citations (PDF)
5Replicating chromatin in the nucleus: A histone variant perspective3.710Citations (PDF)
6Transcription-coupled H3.3 recycling: A link with chromatin states3.914Citations (PDF)
7The cell-cycle choreography of H3 variants shapes the genome
Molecular Cell, 2023, 83, 3773-3786
8.733Citations (PDF)
83D genome organization and beyond!4.80Citations (PDF)
9H3–H4 histone chaperones and cancer2.438Citations (PDF)
10HIRA-dependent boundaries between H3 variants shape early replication in mammals
Molecular Cell, 2022, 82, 1909-1923.e5
8.733Citations (PDF)
11HIRA Supports Hepatitis B Virus Minichromosome Establishment and Transcriptional Activity in Infected Hepatocytes4.029Citations (PDF)
12CENP-A Regulation and Cancer2.847Citations (PDF)
13CD8+T cell responsiveness to anti-PD-1 is epigenetically regulated by Suv39h1 in melanomas11.058Citations (PDF)
14CENP-A overexpression promotes distinct fates in human cells, depending on p53 status3.147Citations (PDF)
15PBRM1 Deficiency Confers Synthetic Lethality to DNA Repair Inhibitors in Cancer
Cancer Research, 2021, 81, 2888-2902
4.2115Citations (PDF)
16CENP-A Subnuclear Localization Pattern as Marker Predicting Curability by Chemoradiation Therapy for Locally Advanced Head and Neck Cancer Patients
Cancers, 2021, 13, 3928
2.718Citations (PDF)
17Regulation of ALT-associated homology-directed repair by polyADP-ribosylation5.955Citations (PDF)
18LifeTime and improving European healthcare through cell-based interceptive medicine
Nature, 2020, 587, 377-386
31.3150Citations (PDF)
19Two HIRA-dependent pathways mediate H3.3 de novo deposition and recycling during transcription5.974Citations (PDF)
20Histone variant H3.3 residue S31 is essential for Xenopus gastrulation regardless of the deposition pathway11.058Citations (PDF)
21JMJD1B, a novel player in histone H3 and H4 processing to ensure genome stability2.220Citations (PDF)
22Vision 2030 for the optimal approach to cancer research and care in Europe: A mission or a network of networks?
Tumori, 2019, 105, 265-270
1.20Citations (PDF)
23Design on a Rational Basis of High-Affinity Peptides Inhibiting the Histone Chaperone ASF1
Cell Chemical Biology, 2019, 26, 1573-1585.e10
4.720Citations (PDF)
24The histone chaperone CAF-1 cooperates with the DNA methyltransferases to maintain Cd4 silencing in cytotoxic T cells
Genes and Development, 2019, 33, 669-683
2.936Citations (PDF)
25Histone supply: Multitiered regulation ensures chromatin dynamics throughout the cell cycle
Journal of Cell Biology, 2019, 218, 39-54
3.694Citations (PDF)
26Combining epigenetic drugs with other therapies for solid tumours — past lessons and future promise53.1419Citations (PDF)
27The epigenetic control of stemness in CD8 + T cell fate commitment
Science, 2018, 359, 177-186
26.5237Citations (PDF)
28Genome-wide Control of Heterochromatin Replication by the Telomere Capping Protein TRF2
Molecular Cell, 2018, 70, 449-461.e5
8.764Citations (PDF)
29Tetratricopeptide repeat domain 7A is a nuclear factor that modulates transcription and chromatin structure
Cell Discovery, 2018, 4,
6.515Citations (PDF)
30Challenges and guidelines toward 4D nucleome data and model standards
Nature Genetics, 2018, 50, 1352-1358
14.152Citations (PDF)
31Chromatin plasticity: A versatile landscape that underlies cell fate and identity
Science, 2018, 361, 1332-1336
26.5208Citations (PDF)
32POLE3-POLE4 Is a Histone H3-H4 Chaperone that Maintains Chromatin Integrity during DNA Replication
Molecular Cell, 2018, 72, 112-126.e5
8.7139Citations (PDF)
33KAP1 facilitates reinstatement of heterochromatin after DNA replication
Nucleic Acids Research, 2018, 46, 8788-8802
11.252Citations (PDF)
34High-resolution visualization of H3 variants during replication reveals their controlled recycling11.093Citations (PDF)
35Functional activity of the H3.3 histone chaperone complex HIRA requires trimerization of the HIRA subunit11.063Citations (PDF)
36Chromatin dynamics during the cell cycle at centromeres
Nature Reviews Genetics, 2017, 18, 192-208
29.1100Citations (PDF)
37Essential role for centromeric factors following p53 loss and oncogenic transformation
Genes and Development, 2017, 31, 463-480
2.968Citations (PDF)
38PP32 and SET/TAF-Iβ proteins regulate the acetylation of newly synthesized histone H4
Nucleic Acids Research, 2017, 45, 11700-11710
11.231Citations (PDF)
39Shaping Chromatin in the Nucleus: The Bricks and the Architects1.622Citations (PDF)
40Maintenance of Epigenetic Information4.6153Citations (PDF)
41Real-Time Tracking of Parental Histones Reveals Their Contribution to Chromatin Integrity Following DNA Damage
Molecular Cell, 2016, 64, 65-78
8.763Citations (PDF)
42The methyltransferase Suv39h1 links the SUMO pathway to HP1α marking at pericentric heterochromatin11.039Citations (PDF)
43Chromatin Regulators as a Guide for Cancer Treatment Choice
Molecular Cancer Therapeutics, 2016, 15, 1768-1777
1.319Citations (PDF)
44The CENP-T/-W complex is a binding partner of the histone chaperone FACT
Genes and Development, 2016, 30, 1313-1326
2.958Citations (PDF)
45The histone chaperone CAF-1 safeguards somatic cell identity
Nature, 2015, 528, 218-224
31.3280Citations (PDF)
46The SENP7 SUMO-Protease Presents a Module of Two HP1 Interaction Motifs that Locks HP1 Protein at Pericentric Heterochromatin
Cell Reports, 2015, 10, 771-782
4.451Citations (PDF)
47Structural insight into how the human helicase subunit MCM2 may act as a histone chaperone together with ASF1 at the replication fork
Nucleic Acids Research, 2015, 43, 1905-1917
11.2134Citations (PDF)
48Methylation of histone H3 lysine 9 occurs during translation
Nucleic Acids Research, 2015, 43, 9097-9106
11.260Citations (PDF)
49Chromatin dynamics after DNA damage: The legacy of the access–repair–restore model
DNA Repair, 2015, 36, 114-121
1.8129Citations (PDF)
50The histone chaperone HJURP is a new independent prognostic marker for luminal A breast carcinoma
Molecular Oncology, 2015, 9, 657-674
2.888Citations (PDF)
51Assembly of telomeric chromatin to create ALTernative endings
Trends in Cell Biology, 2014, 24, 675-685
14.259Citations (PDF)
52The survival gene MED4 explains low penetrance retinoblastoma in patients with large RB1 deletion
Human Molecular Genetics, 2014, 23, 5243-5250
2.141Citations (PDF)
53A network of players in H3 histone variant deposition and maintenance at centromeres2.152Citations (PDF)
54Rapid induction of alternative lengthening of telomeres by depletion of the histone chaperone ASF15.9257Citations (PDF)
55Histone H3 Variants and Their Chaperones During Development and Disease: Contributing to Epigenetic Control6.4120Citations (PDF)
56Phosphorylation and DNA Binding of HJURP Determine Its Centromeric Recruitment and Function in CenH3CENP-A Loading
Cell Reports, 2014, 8, 190-203
4.492Citations (PDF)
57Relationship between genome and epigenome - challenges and requirements for future research
BMC Genomics, 2014, 15,
2.125Citations (PDF)
58Histone lysine methylation and chromatin replication2.177Citations (PDF)
59Mislocalization of the Centromeric Histone Variant CenH3/CENP-A in Human Cells Depends on the Chaperone DAXX
Molecular Cell, 2014, 53, 631-644
8.7251Citations (PDF)
60Pericentric heterochromatin state during the cell cycle controls the histone variant composition of centromeres1.846Citations (PDF)
61Histone Chaperones: Assisting Histone Traffic and Nucleosome Dynamics14.1294Citations (PDF)
62Crystal structure and stable property of the cancer-associated heterotypic nucleosome containing CENP-A and H3.32.773Citations (PDF)
63Histone modifications and a choice of variant: a language that helps the genome express itself4.046Citations (PDF)
64Developmental roles of histone H3 variants and their chaperones
Trends in Genetics, 2013, 29, 630-640
7.6124Citations (PDF)
65Subfunctionalization via Adaptive Evolution Influenced by Genomic Context: The Case of Histone Chaperones ASF1a and ASF1b
Molecular Biology and Evolution, 2013, 30, 1853-1866
3.171Citations (PDF)
66Chromatin and DNA Replication4.6191Citations (PDF)
67Heterochromatin Reorganization during Early Mouse Development Requires a Single-Stranded Noncoding Transcript
Cell Reports, 2013, 4, 1156-1167
4.497Citations (PDF)
68Transcription Recovery after DNA Damage Requires Chromatin Priming by the H3.3 Histone Chaperone HIRA
Cell, 2013, 155, 94-106
23.8288Citations (PDF)
69Nucleosome Dynamics as Modular Systems that Integrate DNA Damage and Repair4.650Citations (PDF)
70Prime, Repair, Restore: The Active Role of Chromatin in the DNA Damage Response
Molecular Cell, 2012, 46, 722-734
8.7323Citations (PDF)
71A Developmental Requirement for HIRA-Dependent H3.3 Deposition Revealed at Gastrulation in Xenopus
Cell Reports, 2012, 1, 730-740
4.491Citations (PDF)
72HIRA dependent H3.3 deposition is required for transcriptional reprogramming following nuclear transfer to Xenopus oocytes2.296Citations (PDF)
73A unified phylogeny-based nomenclature for histone variants2.2309Citations (PDF)
74Contrôle épigénétique de la stabilité phénotypique et fonctionnelle des lymphocytes Th2 par la voie Suv39h1/HP1α
Medecine/Sciences, 2012, 28, 1032-1034
0.22Citations (PDF)
75The SUMO protease SENP7 is a critical component to ensure HP1 enrichment at pericentric heterochromatin5.972Citations (PDF)
76Mouse Rif1 is a key regulator of the replication‐timing programme in mammalian cells
EMBO Journal, 2012, 31, 3678-3690
5.2255Citations (PDF)
77Characterization of chromatin domains by 3D fluorescence microscopy: An automated methodology for quantitative analysis and nuclei screening
BioEssays, 2012, 34, 509-517
1.712Citations (PDF)
78Codanin‐1, mutated in the anaemic disease CDAI, regulates Asf1 function in S‐phase histone supply
EMBO Journal, 2012, 31, 2013-2023
5.283Citations (PDF)
79Interplay between mismatch repair and chromatin assembly5.371Citations (PDF)
80An epigenetic silencing pathway controlling T helper 2 cell lineage commitment
Nature, 2012, 487, 249-253
31.3224Citations (PDF)
81Heterochromatin maintenance and establishment: Lessons from the mouse pericentromere
Nucleus, 2011, 2, 332-338
3.290Citations (PDF)
82Fifty Years after Jacob and Monod: What Are the Unanswered Questions in Molecular Biology?
Molecular Cell, 2011, 42, 403-404
8.75Citations (PDF)
83A Specific Function for the Histone Chaperone NASP to Fine-Tune a Reservoir of Soluble H3-H4 in the Histone Supply Chain
Molecular Cell, 2011, 44, 918-927
8.7153Citations (PDF)
84Dynamics of Histone H3 Deposition In Vivo Reveal a Nucleosome Gap-Filling Mechanism for H3.3 to Maintain Chromatin Integrity
Molecular Cell, 2011, 44, 928-941
8.7382Citations (PDF)
85Functional organization of the genome: chromatin0.20Citations (PDF)
86SUMOylation promotes de novo targeting of HP1α to pericentric heterochromatin
Nature Genetics, 2011, 43, 220-227
14.1205Citations (PDF)
87Asf1b, the necessary Asf1 isoform for proliferation, is predictive of outcome in breast cancer
EMBO Journal, 2011, 30, 480-493
5.2161Citations (PDF)
88Heterochromatin establishment in the context of genome-wide epigenetic reprogramming
Trends in Genetics, 2011, 27, 177-185
7.6132Citations (PDF)
89Cell cycle dynamics of histone variants at the centromere, a model for chromosomal landmarks3.739Citations (PDF)
90H3.3 is deposited at centromeres in S phase as a placeholder for newly assembled CENP-A in G 1 phase
Nucleus, 2011, 2, 146-157
3.2231Citations (PDF)
91The double face of the histone variant H3.3
Cell Research, 2011, 21, 421-434
10.2370Citations (PDF)
92Sequential Establishment of Marks on Soluble Histones H3 and H4
Journal of Biological Chemistry, 2011, 286, 17714-17721
1.3113Citations (PDF)
93Xenopus HJURP and condensin II are required for CENP-A assembly
Journal of Cell Biology, 2011, 192, 569-582
3.6110Citations (PDF)
94HP1α recruitment to DNA damage by p150CAF-1 promotes homologous recombination repair
Journal of Cell Biology, 2011, 193, 81-95
3.6189Citations (PDF)
95Clinical significance and prognostic value of chromatin assembly factor‐1 overexpression in human solid tumours
Histopathology, 2010, 57, 716-724
2.650Citations (PDF)
96Nucleosome dynamics and histone variants
Essays in Biochemistry, 2010, 48, 75-87
3.434Citations (PDF)
97Replication Stress Interferes with Histone Recycling and Predeposition Marking of New Histones
Molecular Cell, 2010, 37, 736-743
8.7271Citations (PDF)
98A Strand-Specific Burst in Transcription of Pericentric Satellites Is Required for Chromocenter Formation and Early Mouse Development
Developmental Cell, 2010, 19, 625-638
5.4315Citations (PDF)
99Heterochromatin at Mouse Pericentromeres: A Model for De Novo Heterochromatin Formation and Duplication during Replication1.637Citations (PDF)
100Making copies of chromatin: the challenge of nucleosomal organization and epigenetic information
Trends in Cell Biology, 2009, 19, 29-41
14.2140Citations (PDF)
101Heterochromatin protein 1α: a hallmark of cell proliferation relevant to clinical oncology
EMBO Molecular Medicine, 2009, 1, 178-191
4.772Citations (PDF)
102A histone code for the DNA damage response in mammalian cells?
EMBO Journal, 2009, 28, 1828-1830
5.226Citations (PDF)
103The HP1α–CAF1–SetDB1‐containing complex provides H3K9me1 for Suv39‐mediated K9me3 in pericentric heterochromatin
EMBO Reports, 2009, 10, 769-775
3.5230Citations (PDF)
104Epigenetic inheritance during the cell cycle68.4758Citations (PDF)
105Tumor aromatase expression as a prognostic factor for local control in young breast cancer patients after breast-conserving treatment3.416Citations (PDF)
106Chromatin dynamics during epigenetic reprogramming in the mouse germ line
Nature, 2008, 452, 877-881
31.3646Citations (PDF)
107The HP1–p150/CAF-1 interaction is required for pericentric heterochromatin replication and S-phase progression in mouse cells5.9135Citations (PDF)
108Pericentric heterochromatin: dynamic organization during early development in mammals
Differentiation, 2008, 76, 15-23
1.9102Citations (PDF)
109CAF-1 is required for efficient replication of euchromatic DNA in Drosophila larval endocycling cells
Chromosoma, 2008, 118, 235-248
1.734Citations (PDF)
110DNA Damage Leaves its Mark on Chromatin
Cell Cycle, 2007, 6, 2355-2359
2.314Citations (PDF)
111Chromatin Challenges during DNA Replication and Repair
Cell, 2007, 128, 721-733
23.8717Citations (PDF)
112Dynamique de la chromatine lors de la réparation des lésions de l’ADN
Medecine/Sciences, 2007, 23, 29-31
0.22Citations (PDF)
113HP1α guides neuronal fate by timing E2F‐targeted genes silencing during terminal differentiation
EMBO Journal, 2007, 26, 3616-3628
5.249Citations (PDF)
114Histone chaperones: an escort network regulating histone traffic5.9325Citations (PDF)
115Marking histone H3 variants: How, when and why?7.4164Citations (PDF)
116Structural differences in centromeric heterochromatin are spatially reconciled on fertilisation in the mouse zygote
Chromosoma, 2007, 116, 403-415
1.7156Citations (PDF)
117The histone chaperone Asf1 is dispensable for direct de novo histone deposition in Xenopus egg extracts
Chromosoma, 2007, 116, 487-496
1.733Citations (PDF)
118New Histone Incorporation Marks Sites of UV Repair in Human Cells
Cell, 2006, 127, 481-493
23.8243Citations (PDF)
119Chromatin assembly: a basic recipe with various flavours2.4135Citations (PDF)
120PTMs on H3 Variants before Chromatin Assembly Potentiate Their Final Epigenetic State
Molecular Cell, 2006, 24, 309-316
8.7387Citations (PDF)
121The replication kinase Cdc7‐Dbf4 promotes the interaction of the p150 subunit of chromatin assembly factor 1 with proliferating cell nuclear antigen
EMBO Reports, 2006, 7, 817-823
3.582Citations (PDF)
122CAF-1 Is Essential for Heterochromatin Organization in Pluripotent Embryonic Cells
PLoS Genetics, 2006, 2, e181
2.2160Citations (PDF)
123Methods for Studying Chromatin Assembly Coupled to DNA Repair
Methods in Enzymology, 2006, , 358-374
2.015Citations (PDF)
124The effects of histone deacetylase inhibitors on heterochromatin: implications for anticancer therapy?
EMBO Reports, 2005, 6, 520-524
3.5111Citations (PDF)
125How epigenetics integrates nuclear functions
EMBO Reports, 2005, 6, 624-628
3.555Citations (PDF)
126Variations sur le thème du « code histone»
Medecine/Sciences, 2005, 21, 384-389
0.219Citations (PDF)
127Human Asf1 Regulates the Flow of S Phase Histones during Replicational Stress
Molecular Cell, 2005, 17, 301-311
8.7258Citations (PDF)
128Histone metabolic pathways and chromatin assembly factors as proliferation markers
Cancer Letters, 2005, 220, 1-9
6.747Citations (PDF)
129Compaction Kinetics on Single DNAs: Purified Nucleosome Reconstitution Systems versus Crude Extract
Biophysical Journal, 2005, 89, 3647-3659
1.532Citations (PDF)
130Mouse centric and pericentric satellite repeats form distinct functional heterochromatin
Journal of Cell Biology, 2004, 166, 493-505
3.6474Citations (PDF)
131HP1 and the dynamics of heterochromatin maintenance68.4573Citations (PDF)
132A CAF-1 dependent pool of HP1 during heterochromatin duplication
EMBO Journal, 2004, 23, 3516-3526
5.2167Citations (PDF)
133Bromodomains in living cells participate in deciphering the histone code
Trends in Cell Biology, 2004, 14, 279-281
14.233Citations (PDF)
134Histone chaperones, a supporting role in the limelight3.3288Citations (PDF)
135Interplay between chromatin and cell cycle checkpoints in the context of ATR/ATM-dependent checkpoints
DNA Repair, 2004, 3, 969-978
1.854Citations (PDF)
136Histone H3.1 and H3.3 Complexes Mediate Nucleosome Assembly Pathways Dependent or Independent of DNA Synthesis
Cell, 2004, 116, 51-61
23.81,256Citations (PDF)
137Two Distinct Nucleosome Assembly Pathways: Dependent or Independent of DNA Synthesis Promoted by Histone H3.1 and H3.3 Complexes1.637Citations (PDF)
138FROM NUCLEOSOME TO HETEROCHROMATIN: THEIR FORMATION AND MAINTENANCE1.60Citations (PDF)
139Local action of the chromatin assembly factor CAF-1 at sites of nucleotide excision repair in vivo
EMBO Journal, 2003, 22, 5163-5174
5.2152Citations (PDF)
140Repairing DNA damage in chromatin
Biochimie, 2003, 85, 1133-1147
2.161Citations (PDF)
141When repair meets chromatin
EMBO Reports, 2002, 3, 28-33
3.5194Citations (PDF)
142Human Asf1 and CAF‐1 interact and synergize in a repair‐coupled nucleosome assembly pathway
EMBO Reports, 2002, 3, 329-334
3.5290Citations (PDF)
143HIRA Is Critical for a Nucleosome Assembly Pathway Independent of DNA Synthesis
Molecular Cell, 2002, 9, 1091-1100
8.7406Citations (PDF)
144Higher-order structure in pericentric heterochromatin involves a distinct pattern of histone modification and an RNA component
Nature Genetics, 2002, 30, 329-334
14.1647Citations (PDF)
145UV-damaged DNA-binding protein in the TFTC complex links DNA damage recognition to nucleosome acetylation
EMBO Journal, 2001, 20, 3187-3196
5.2190Citations (PDF)
146Maintenance of Nucleolar Machineries and pre-rRNAs in Remnant Nucleolus of Erythrocyte Nuclei and Remodeling in Xenopus Egg Extracts
Experimental Cell Research, 2001, 269, 23-34
2.113Citations (PDF)
147The ins and outs of nucleosome assembly2.4140Citations (PDF)
148Direct Imaging of Single-Molecules: From Dynamics of a Single DNA Chain to the Study of Complex DNA-Protein Interactions
Science Progress, 2001, 84, 267-290
1.612Citations (PDF)
149Dimerization of the largest subunit of chromatin assembly factor 1: importance in vitro and during Xenopus early development
EMBO Journal, 2001, 20, 2015-2027
5.2101Citations (PDF)
150Reversible disruption of pericentric heterochromatin and centromere function by inhibiting deacetylases
Nature Cell Biology, 2001, 3, 114-120
12.8349Citations (PDF)
151The Ribosomal RNA Processing Machinery Is Recruited to the Nucleolar Domain before RNA Polymerase I during Xenopus laevis Development
Journal of Cell Biology, 2000, 149, 293-306
3.655Citations (PDF)
152A CAF-1–PCNA-Mediated Chromatin Assembly Pathway Triggered by Sensing DNA Damage
Molecular and Cellular Biology, 2000, 20, 1206-1218
1.5313Citations (PDF)
153Fast kinetics of chromatin assembly revealed by single-molecule videomicroscopy and scanning force microscopy5.384Citations (PDF)
154Tetracycline-Regulated Gene Expression Switch in Xenopus laevis
Experimental Cell Research, 2000, 256, 392-399
2.110Citations (PDF)
155Hormone activation induces nucleosome positioning in vivo
EMBO Journal, 2000, 19, 1023-1033
5.263Citations (PDF)
156Assemblage et remodelage : le nucléosome sous influence.
Medecine/Sciences, 2000, 16, 603
0.20Citations (PDF)
157Duplication and Maintenance of Heterochromatin Domains
Journal of Cell Biology, 1999, 147, 1153-1166
3.6195Citations (PDF)
158Chromatin rearrangements during nucleotide excision repair
Biochimie, 1999, 81, 45-52
2.133Citations (PDF)
159Remodeling nuclear organization during early development
Biology of the Cell, 1998, 90, 111-111
1.20Citations (PDF)
160Recruitment of Phosphorylated Chromatin Assembly Factor 1 to Chromatin after UV Irradiation of Human Cells
Journal of Cell Biology, 1998, 143, 563-575
3.6177Citations (PDF)
161Presence of Pre-rRNAs before Activation of Polymerase I Transcription in the Building Process of Nucleoli during Early Development of Xenopus laevis
Journal of Cell Biology, 1998, 142, 1167-1180
3.670Citations (PDF)
162Core Histones and HIRIP3, a Novel Histone-Binding Protein, Directly Interact with WD Repeat Protein HIRA
Molecular and Cellular Biology, 1998, 18, 5546-5556
1.599Citations (PDF)
163Phosphorylation of the RNA Polymerase II Largest Subunit during Xenopus laevis Oocyte Maturation
Molecular and Cellular Biology, 1997, 17, 1434-1440
1.560Citations (PDF)
164Initiation and bidirectional propagation of chromatin assembly from a target site for nucleotide excision repair
EMBO Journal, 1997, 16, 6281-6289
5.259Citations (PDF)
165Histone acetylation: influence on transcription, nucleosome mobility and positioning, and linker histone-dependent transcriptional repression
EMBO Journal, 1997, 16, 2096-2107
5.2213Citations (PDF)
166Les acétyl-transférases et désacétylases des histones : des co-régulateurs de la transcription
Medecine/Sciences, 1997, 13, 1205
0.24Citations (PDF)
167Chromatin Assembly Coupled to DNA Repair: A New Role for Chromatin Assembly Factor I
Cell, 1996, 86, 887-896
23.8332Citations (PDF)
168Constraints on transcriptional activator function contribute to transcriptional quiescence during early Xenopus embryogenesis.
EMBO Journal, 1995, 14, 1752-1765
5.2120Citations (PDF)
169The Heat Shock Response in Xenopus Oocytes, Embryos, and Somatic Cells: A Regulatory Role for Chromatin
Developmental Biology, 1995, 170, 62-74
1.328Citations (PDF)
170The origin replication complex (ORC): The stone that kills two birds
BioEssays, 1994, 16, 233-235
1.72Citations (PDF)
171Histone Acetylation Influences both Gene Expression and Development of Xenopus laevis
Developmental Biology, 1994, 165, 654-669
1.3132Citations (PDF)
172Isolation of a potentially functional Y-box protein (MSY-1) processed pseudogene from mouse: evolutionary relationships within the EFIA/dbpB/YB-1 gene family
Gene, 1994, 141, 255-259
1.610Citations (PDF)
173TFIIIC relieves repression of U6 snRNA transcription by chromatin
Nature, 1993, 362, 475-477
31.3118Citations (PDF)
174Chromatin Transitions during Early Xenopus Embryogenesis: Changes in Histone H4 Acetylation and in Linker Histone Type
Developmental Biology, 1993, 160, 214-227
1.3194Citations (PDF)
175Nuclear Assembly, Structure, and Function: The Use of Xenopus in Vitro Systems2.1124Citations (PDF)
176Replication-coupled chromatin assembly is required for the repression of basal transcription in vivo.
Genes and Development, 1993, 7, 2033-2047
2.9155Citations (PDF)
177Transcription Factor Access to DNA in the Nucleosome1.618Citations (PDF)
178Transcription Complex Disruption Caused by a Transition in Chromatin Structure1.542Citations (PDF)
179Competition between transcription complex assembly and chromatin assembly on replicating DNA.
EMBO Journal, 1990, 9, 573-582
5.2119Citations (PDF)
180Chromatin assembly on replicating DNAin vitro
Nucleic Acids Research, 1990, 18, 5767-5774
11.2114Citations (PDF)
181Mismatch repair involving localized DNA synthesis in extracts of Xenopus eggs.5.341Citations (PDF)
182Xenopus egg extracts: A model system for chromatin replication3.313Citations (PDF)
183Proto-oncogenes and embryonic development
Biochimie, 1988, 70, 895-899
2.14Citations (PDF)
184Oligonucleotide site-directed mutagenesis in Xenopus egg extracts
Nucleic Acids Research, 1988, 16, 8525-8539
11.21Citations (PDF)
185Assembly of spaced chromatin involvement of ATP and DNA topoisomerase activity.
EMBO Journal, 1988, 7, 4355-4365
5.2107Citations (PDF)
186Assembly of spaced chromatin promoted by DNA synthesis in extracts from Xenopus eggs.
EMBO Journal, 1988, 7, 665-672
5.299Citations (PDF)
187Insights into the molecular architecture and histone H3-H4 deposition mechanism of yeast Chromatin assembly factor 1
ELife, 0, 6,
1.064Citations (PDF)
188HIRA defines early replication initiation zones independently of their genome compartment11.03Citations (PDF)
189Recent advances on mammalian DNA replication initiation and timing: From chromatin features to nuclear organization4.80Citations (PDF)
190Non-centromeric CENP-A regulates epithelial-mesenchymal plasticity and heterogeneity in human cells
Cell Reports, 0, 45, 117405
4.40Citations (PDF)