Research map: Lipid-pathogen interactions: sphingolipids in Chlamydia trachomatis infection

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  1. Expansion microscopy · Fei Chen · 2015 · 1638 citations · Cited by this paper
  2. The diverse effects of stress in cross-feeding systems · 2026 · Related
  3. Genome Sequence of an Obligate Intracellular Pathogen of Humans: Chlamydia trachomatis · Richard S. Stephens · 1998 · 1592 citations · Cited by this paper
  4. The unusual suspects: the role of extracellular vesicles in host/pathogens interactions · 2026 · Related
  5. Interaction of chlamydiae and host cells in vitro · James W. Moulder · 1991 · 737 citations · Cited by this paper
  6. Common sensor and diverse effectors: regulation of bacterial antiphage immunity by retron systems · 2026 · Related
  7. Expansion microscopy with conventional antibodies and fluorescent proteins · Tyler J. Chozinski · 2016 · 500 citations · Cited by this paper
  8. When a protozoan pathogen imitates cancer · 2026 · Related
  9. Chlamydia trachomatis interrupts an exocytic pathway to acquire endogenously synthesized sphingomyelin in transit from the Golgi apparatus to the plasma membrane. · Ted Hackstadt · 1996 · 396 citations · Cited by this paper
  10. Hedging their bets: how bacterial pathogens diversify to survive infection · 2026 · Related
  11. Lipid metabolism in Chlamydia trachomatis-infected cells: directed trafficking of Golgi-derived sphingolipids to the chlamydial inclusion. · Ted Hackstadt · 1995 · 354 citations · Cited by this paper
  12. B vitamin-mediated interactions in synthetic microbial communities · 2026 · Related
  13. A Comprehensive Review: Sphingolipid Metabolism and Implications of Disruption in Sphingolipid Homeostasis · Brianna M. Quinville · 2021 · 352 citations · Cited by this paper
  14. The polar landscape of bacterial pathogens and predators · 2026 · Related
  15. The Lipid Transfer Protein CERT Interacts with the Chlamydia Inclusion Protein IncD and Participates to ER-Chlamydia Inclusion Membrane Contact Sites · Isabelle Derré · 2011 · 293 citations · Cited by this paper
  16. Beyond the protein lattice: bacterial S-layer glycans — from structure to functional frontier · 2026 · Related
  17. Antibacterial Activity of Sphingoid Bases and Fatty Acids against Gram-Positive and Gram-Negative Bacteria · Carol L. Fischer · 2011 · 241 citations · Cited by this paper
  18. Mutations in RNA polymerase that drive the emergence of antibiotic resistance · 2026 · Related
  19. Chlamydia trachomatis Co-opts GBF1 and CERT to Acquire Host Sphingomyelin for Distinct Roles during Intracellular Development · Cherilyn A. Elwell · 2011 · 239 citations · Cited by this paper
  20. From the known to the unknown: the diverse family of TetR-like regulators in Bacillus subtilis · 2026 · Related
  21. The Chlamydia trachomatis IncA protein is required for homotypic vesicle fusion · Ted Hackstadt · 1999 · 231 citations · Cited by this paper
  22. The protein SdhA maintains the integrity of the Legionella -containing vacuole · Elizabeth A. Creasey · 2012 · 205 citations · Cited by this paper
  23. Host cell phospholipids are trafficked to and then modified by Chlamydia trachomatis · John Wylie · 1997 · 194 citations · Cited by this paper
  24. Activation of Raf/MEK/ERK/cPLA2 Signaling Pathway Is Essential for Chlamydial Acquisition of Host Glycerophospholipids · Heng Su · 2004 · 159 citations · Cited by this paper
  25. Isolates ofChlamydia trachomatisThat Occupy Nonfusogenic Inclusions Lack IncA, a Protein Localized to the Inclusion Membrane · Robert J. Suchland · 2000 · 155 citations · Cited by this paper
  26. Trifunctional lipid probes for comprehensive studies of single lipid species in living cells · Doris Höglinger · 2017 · 148 citations · Cited by this paper
  27. The Chlamydia trachomatis Inclusion Membrane Protein CpoS Counteracts STING-Mediated Cellular Surveillance and Suicide Programs · Barbara Susanne Sixt · 2016 · 139 citations · Cited by this paper
  28. Host cell-derived sphingolipids are required for the intracellular growth of Chlamydia trachomatis · Christiaan van Ooij · 2000 · 129 citations · Cited by this paper
  29. Lipid acquisition by intracellular Chlamydiae · Cherilyn A. Elwell · 2012 · 117 citations · Cited by this paper
  30. Absence of Specific Chlamydia trachomatis Inclusion Membrane Proteins Triggers Premature Inclusion Membrane Lysis and Host Cell Death · Mary M. Weber · 2017 · 113 citations · Cited by this paper
  31. Inclusion Biogenesis and Reactivation of Persistent Chlamydia trachomatis Requires Host Cell Sphingolipid Biosynthesis · D. Kesley Robertson · 2009 · 107 citations · Cited by this paper
  32. Conservation of the Biochemical Properties of IncA from Chlamydia trachomatis and Chlamydia caviae · Cédric Delevoye · 2004 · 96 citations · Cited by this paper
  33. Expression of the Effector Protein IncD in Chlamydia trachomatis Mediates Recruitment of the Lipid Transfer Protein CERT and the Endoplasmic Reticulum-Resident Protein VAPB to the Inclusion Membrane · Hervé Agaisse · 2014 · 89 citations · Cited by this paper
  34. Nanoscale imaging of bacterial infections by sphingolipid expansion microscopy · Ralph Götz · 2020 · 87 citations · Cited by this paper
  35. Temporal analysis of the developing Chlamydia psittaci inclusion by use of fluorescence and electron microscopy · Daniel D. Rockey · 1996 · 85 citations · Cited by this paper
  36. Sphingomyelin trafficking in Chlamydia pneumoniae-infected cells · Katerina Wolf · 2001 · 80 citations · Cited by this paper
  37. The multiple functions of the numerous Chlamydia trachomatis secreted proteins: the tip of the iceberg · Joana N. Bugalhão · 2019 · 73 citations · Cited by this paper
  38. A Functional Core of IncA Is Required for Chlamydia trachomatis Inclusion Fusion · Mary M. Weber · 2016 · 68 citations · Cited by this paper
  39. Epidemiology and Clinical Manifestations of UniqueChlamydia trachomatisIsolates That Occupy Nonfusogenic Inclusions · William M. Geisler · 2001 · 60 citations · Cited by this paper

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