Leishmania amazonensis promastigotes present two distinct modes of nucleus and kinetoplast segregation during cell

Marcelo Santos da Silva1, Jomar Patrício Monteiro, Vinícius Santana Nunes

  • 1Departamento de Genética, Instituto de Biociências, Universidade Estadual Paulista (UNESP), Botucatu, São Paulo, Brazil ; Universidade Estadual de Campinas (UNICAMP), Campinas, São Paulo, Brazil.

Plos One
|November 27, 2013
PubMed

Insights

Leishmania (L.) amazonensis cell division shows unique nucleus and kinetoplast segregation patterns. This parasite species exhibits distinct, non-fixed orders for organelle duplication during its cell cycle.

Area of Science:

  • Cell Biology
  • Parasitology
  • Molecular Biology

Background:

  • Leishmania (L.) amazonensis causes Tegumentary leishmaniasis in the Americas.
  • Understanding the cell cycle of Leishmania is crucial for developing targeted therapies.

Purpose of the Study:

  • To elucidate the morphological events and timing of organelle segregation during the cell cycle of Leishmania (L.) amazonensis promastigotes.
  • To investigate the distinct modes of nucleus and kinetoplast segregation in this parasite.

Main Methods:

  • Utilized DAPI staining and EdU labeling to track DNA-containing organelle segregation and DNA replication.
  • Employed a specific monoclonal antibody to observe new flagellum emergence.
  • Confirmed findings using parasite synchronization with hydroxyurea.

Main Results:

  • Leishmania (L.) amazonensis exhibits two distinct modes of nucleus and kinetoplast segregation.
  • In 65% of dividing cells, kinetoplast duplicates before the nucleus; in 35%, the order is reversed or simultaneous.
  • A new flagellum emerges during the S to G2 phase, preceding organelle segregation.

Conclusions:

  • The segregation of nucleus and kinetoplast in Leishmania (L.) amazonensis lacks a fixed order, differing from other trypanosomatids.
  • This species-specific characteristic highlights variations in cellular biology within the Leishmania genus.
  • The findings contribute to understanding the unique cell cycle of Leishmania species.

Related Concept Videos

Diversity of Protists I01:15

Diversity of Protists I

Excavata is a diverse group of protists that includes both chemoorganotrophic and phototrophic species, with some thriving in anaerobic environments. Among the key groups within Excavata are diplomonads and parabasalids, which are flagellated protists that lack mitochondria and chloroplasts. These microorganisms typically inhabit anoxic environments, such as the intestines of animals, where they exist either symbiotically or as parasites, relying on fermentation for energy production. Some...
2.3K
Diversity of Protists IV01:27

Diversity of Protists IV

Amoebozoa represent a diverse group of terrestrial and aquatic protists that utilize lobe-shaped pseudopodia for locomotion and feeding. This characteristic differentiates them from the Rhizaria, which possess threadlike pseudopodia. The primary classifications within Amoebozoa include gymnamoebas, entamoebas, and the plasmodial and cellular slime molds. Phylogenetic evidence indicates that Amoebozoa diverged from a lineage that ultimately gave rise to fungi and animals.Gymnamoebas and...
2.1K
Meiosis II02:02

Meiosis II

Meiosis II entails cell division and segregation of the sister chromatids, resulting in the production of four unique haploid gametes. The steps for meiosis II are similar to mitosis, except that meiosis II occurs in haploid cells, whereas mitosis occurs in diploid cells.
The timing and cell division patterns of meiosis differ between males and females. In male meiosis, the centrosomes are part of the formation of the meiotic spindle. However, in oocytes, including that of humans, Drosophila,...
32.7K
Meiosis II01:57

Meiosis II

Meiosis II is the second and final stage of meiosis. It relies on the haploid cells produced during meiosis I, each of which contain only 23 chromosomes—one from each homologous initial pair. Importantly, each chromosome in these cells is composed of two joined copies, and when these cells enter meiosis II, the goal is to separate such sister chromatids using the same microtubule-based network employed in other division processes. The result of meiosis II is two haploid cells, each...
169.4K
Centrosome Duplication02:25

Centrosome Duplication

The primary microtubule organizing center (MTOC) in animal cells is the centrosome. A centrosome has two cylindrical centrioles at its core. Each centriole consists of nine sets of three microtubules held together by proteins. The centrioles are positioned at right angles to each other and surrounded by a shapeless protein cloud called the pericentriolar matrix, or pericentriolar material (PCM).
To ensure that each daughter cell receives a centrosome after cell division, centrosome duplication...
3.7K
Meiosis vs. Mitosis02:57

Meiosis vs. Mitosis

Cell division is necessary for growth and reproduction in organisms. Mitosis aids cell growth and development by dividing somatic cells. In contrast, meiosis causes the division of germ cells and plays an essential role in sexual reproduction. Due to their unique functional requirements, mitosis and meiosis differ from each other in multiple aspects.
Before the start of mitosis and meiosis I, the cell synthesizes DNA, resulting in two homologous copies of each chromosome. DNA synthesis is...
39.6K