- Research Article
- 10.1016/j.jafrearsci.2025.105783
First report of late Messinian Lago-Mare micropaleontological assemblage in northeastern Algeria (Beni Fouda Basin)
- Nov 01, 2025
- Journal of African Earth Sciences
- Sidali Chine + 5 more +5
Publications from 2021 to 2026
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First report of late Messinian Lago-Mare micropaleontological assemblage in northeastern Algeria (Beni Fouda Basin)
Geoheritage Assessment of Northern Tunisia: First Proposal of Geosites and Prospects for Geotourism
Gelasian to Calabrian (Early Pleistocene) marine ostracods and foraminifera from Mida Section (Cap Bon, Tunisia) Les ostracodes et les foraminifères marins du Gélasien au Calabrien (Pléistocène inférieur) de la coupe de Mida (Cap Bon, Tunisie)
Sedimentary evolution of the late Cretaceous - Eocene deep carbonates series of the foreland Magrebian chain. The Tellian domain of northern Tunisia
Late Miocene Exhumation of Eocene and Early Miocene metamorphic Rocks in Northern Tunisia: A widespread Western Mediterranean Process Driven by Lithospheric Mantle Delamination under Foreland Thrust Belts
Earth and Space Science Open Archive This preprint has been submitted to and is under consideration at Tectonics. ESSOAr is a venue for early communication or feedback before peer review. Data may be preliminary.Learn more about preprints preprintOpen AccessYou are viewing the latest version by default [v1]Late Miocene Exhumation of Eocene and Early Miocene metamorphic Rocks in Northern Tunisia: A widespread Western Mediterranean Process Driven by Lithospheric Mantle Delamination under Foreland Thrust BeltsAuthorsGuillermoBooth ReaiDSeifeddineGaidiiDFetheddineMelkiWissemMarzouguiPatriciaRuanoFernandoNietoiDJosé MiguelAzañónJorge PedroGalveCarlosGarridoiDSee all authors Guillermo Booth ReaiDCorresponding Author• Submitting AuthorUniversidad de GranadaiDhttps://orcid.org/0000-0003-1179-8321view email addressThe email was not providedcopy email addressSeifeddine GaidiiDDepartment of Earth Sciences, Tunis El Manar UniversityiDhttps://orcid.org/0000-0002-1996-1392view email addressThe email was not providedcopy email addressFetheddine MelkiFaculty of Sciences of Tunisview email addressThe email was not providedcopy email addressWissem MarzouguiOffice National de Minesview email addressThe email was not providedcopy email addressPatricia RuanoDepartamento de Geodinámica, Universidad de Granadaview email addressThe email was not providedcopy email addressFernando NietoiDUniversidad de GranadaiDhttps://orcid.org/0000-0001-6250-056Xview email addressThe email was not providedcopy email addressJosé Miguel AzañónInstituto Andaluz de Ciencias de la Tierra (C.S.I.C.-Universidad de Granada) and Departamento de Geodinámicaview email addressThe email was not providedcopy email addressJorge Pedro GalveUniversidad de Granadaview email addressThe email was not providedcopy email addressCarlos GarridoiDUniversidad de GranadaiDhttps://orcid.org/0000-0003-4357-3637view email addressThe email was not providedcopy email address
Read moreSpread tsunami impact in East Tunisia contemporaneous of the CE 365 Crete earthquake
<p>New field investigations along the East Tunisian coastline reveal sedimentary deposits and damaged localities that may account for a catastrophic event during late Holocene. North of Sfax - Thyna city (at Henchir El Majdoul site) ~3.4 m high cliff coastal marine and alluvial terraces show a 20 to 50-cm-thick chaotic layer with sandy coarse gravels mixed with limestone beach-rocks, reworked blocks, broken shells of marine and lagoon gastropods and lamellibranch mollusks, organic matter, and Roman pottery. The chaotic layer truncates a succession of sandy-silty paleosol, covers Roman settlements and is overlain by fire remains and a relatively thin (~10 cm) sandy-silty aeolian unit and ~1-m-thick alluvial deposits. Charcoal samples collected at 10 cm below and 4 cm above the catastrophic deposits provide radiocarbon dating that brackets a catastrophic event between 286 and 370 CE (2s). Beside the damaged Roman site of Thyna, other localities of the east Tunisian coastline such as Neapolis (Nabeul) near Tunis, Hadrumete (Sousse), Meninx-town in Girba (Djerba), Wadi Ennouili (Gulf of Gabes), and Sabratha (in Libya) experienced major damage and abandonment of sites in Fifth century. The extent of damage from northern Libya to northern Tunisia at the Fourth century and radiocarbon dating, added to the 2.6 m thick turbidite deposits west of Malta correlate with the major tsunamigenic earthquake of 21 July 365 (Mw ~ 8) in west Crete (Greece). Numerical modelling of the tsunami caused by an earthquake in the Hellenic Arc subduction zone suggests more than 3.5 m high tsunami waves propagation affecting the Tunisia coastline, resulting in a run-up consistent with the stratigraphic evidence presented here. The catastrophic deposits, offshore-onshore correlations, archeological damage and modelling of tsunami waves suggest a new, higher-resolution, assessment of the tsunami hazard leading to a better estimate of tsunami risk on the eastern coast of Tunisia.</p>
Read moreOstracod Response to a Major Middle Jurassic Sea-Level Fall: A Case Study from Southern Tunisia (North Gondwana) with Implications on Regional Stratigraphy and Palaeoenvironmental Reconstruction
Marginal-marine to non-marine ostracod assemblages from the Bajocian (Mid-Jurassic) of southern Tunisia, precisely from the Krachoua Formation at the Kef El Anneba section near the Beni Kheddache area, are here described and tested for their utility to improve the stratigraphic accuracy and palaeoenvironmental reconstructions. This particular microfauna consists of 11 species belonging to 6 genera and represents 2 distinct types of species-rich assemblages from this time interval, allowing the interpretation of the depositional setting of the fossiliferous horizon from which the samples derive. The first ostracod assemblage is mainly composed of the brackish to shallow marine species Fastigatocythere sp. Mette, 1995; Vernoniella aff. V. bajociana Bate, 1965b; Paracypris sp. A, Paracypris sp. B, Fabanella sarda Malz et al., 1985; Marslatourella aff. M. bathonica Andreu, 1999; and Fabanella aff. F. bathonica Oertli, 1957. This ostracod biofacies reflects marginal marine (shallow platform, restricted lagoon) conditions in the studied area. In contrast, the second ostracod assemblage is exclusively dominated by the non-marine limnic species Alicenula sp., Theriosynoecum pusilla Rohr, 1976; Theriosynoecum aff. T. aveyronensis Rohr, 1976; and Theriosynoecum sp. Such ostracod biofacies reflects the establishment of (a) permanent freshwater lake(s) in the studied area, triggered by the total emersion of the Bajocian Krachoua platform, presumably as response to the short-term sea-level fall event JBj3 of Haq (2017). The recognized ostracod species from the upper part of the Krachoua Formation at Kef El Anneba section (Medenine area) are particularly similar to those already described from the neighbouring sections of Kezzani (Dhaher area) and Krachoua (Tataouine area), facilitating a stratigraphic calibration of the Krachoua Formation, as well as regional correlations of the respective Bajocian continental event within the southern Tunisian palaeogeographic domain. Moreover, the biogeography of the studied ostracod microfauna from the Mid-Jurassic of southern Tunisia provides further arguments to support the hypothesis of significant biological exchanges between Laurasian and Gondwanan islands, as recently demonstrated by means of a charophyte microflora, indicating that Peri-Tethyan biogeography remained relatively uniform during that time interval and challenging the previous assumption of their endemism.
Read moreReply to Belkhiria W. and Inoubli M.H. comment on “Deformation styles related to intraplate strike-slip fault systems of the Saharan-Tunisian Southern Atlas (North Africa): New kinematic models”
Comment on “deformation styles related to intraplate strike-slip fault systems of the Saharan-Tunisian southern Atlas (North Africa): New kinematic models” by soumaya et al.
Evidence of tsunami deposits in East Tunisia coastline contemporaneous of the AD 365 Crete earthquake: Field data and modelling 
<p>New field investigations along the East Tunisian near Sfax coastline reveal sedimentary deposits that may account for a catastrophic event. The sedimentary unit is made of sand coarse gravels, limestone beach-rock, mixed with broken shells of marine gastropods and lamellibranch mollusks, bones and organic matter. Near Thyna, at El Amra site located north of Sfax city, 3.2 m to 3.6 m high late Quaternary coastal terraces are spread over the coastline; they contain a catastrophic deposit that often cover archeological sites of the Roman period. The stratigraphic units show a succession of sandy-silty paleosol truncated by 40 to 70-cm-thick catastrophic unit which is covered in some sites by fire remains overlain by a relatively thin (~10 cm) sandy-silty aeolian unit. The sedimentary succession ends with about 1-m-thick of alluvial deposits and paleosol units. Charcoal samples collected at 10 cm below and 4 cm above the catastrophic units provide radiocarbon dating 236 - 385 cal AD and 249 – 541 cal AD (2s), respectively. Radiocarbon ages bracket the catastrophic unit that may refer to the major tsunamigenic earthquake of 21 July 365 (Mw ~ 8) in west Crete (Greece) reported to have inundated coastlines of Sabratha in Libya and Alexandria in Egypt. The nonlinear shallow water Tsunami-HySEA code is used to perform numerical modelling using 2 different seismic sources comparable to that of the AD 365 Crete earthquake. They feature 2 principal mechanisms that accommodate the Nubia-Aegean convergence along the Hellenic Arc, namely a shallowly dipping thrust-faulting on the subduction interface, as well as a steeper splay faulting in the overriding material. The maximum tsunami wave heights distribution calculated along the Tunisia coast peak in both cases at about 3 meters. The run-up caused by these sources, also considering that we have used uniform slip on the causative fault, can be significantly higher. This proves that the tsunami waves may have reached Tunisia where several coastal cities where severely damaged and reported to have stopped their economic activity. With the identification of the 365 tsunami deposits in eastern coast of Tunisia, the tsunami hazard and risk associated with a major earthquake from the western Hellenic subduction zone cannot be ruled out.</p>
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