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Dive into the research topics where Hovirag Lancioni is active.

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Featured researches published by Hovirag Lancioni.


Genome Research | 2010

The initial peopling of the Americas: a growing number of founding mitochondrial genomes from Beringia.

Ugo A. Perego; Norman Angerhofer; Maria Pala; Anna Olivieri; Hovirag Lancioni; Baharak Hooshiar Kashani; Valeria Carossa; Jayne E. Ekins; Alberto Gómez-Carballa; Gabriela Huber; Bettina Zimmermann; Daniel Corach; Nora Babudri; Fausto Panara; Natalie M. Myres; Walther Parson; Ornella Semino; Antonio Salas; Scott R. Woodward; Alessandro Achilli; Antonio Torroni

Pan-American mitochondrial DNA (mtDNA) haplogroup C1 has been recently subdivided into three branches, two of which (C1b and C1c) are characterized by ages and geographical distributions that are indicative of an early arrival from Beringia with Paleo-Indians. In contrast, the estimated ages of C1d--the third subset of C1--looked too young to fit the above scenario. To define the origin of this enigmatic C1 branch, we completely sequenced 63 C1d mitochondrial genomes from a wide range of geographically diverse, mixed, and indigenous American populations. The revised phylogeny not only brings the age of C1d within the range of that of its two sister clades, but reveals that there were two C1d founder genomes for Paleo-Indians. Thus, the recognized maternal founding lineages of Native Americans are at least 15, indicating that the overall number of Beringian or Asian founder mitochondrial genomes will probably increase extensively when all Native American haplogroups reach the same level of phylogenetic and genomic resolution as obtained here for C1d.


Proceedings of the National Academy of Sciences of the United States of America | 2012

Mitochondrial genomes from modern horses reveal the major haplogroups that underwent domestication

Alessandro Achilli; Anna Olivieri; Pedro Soares; Hovirag Lancioni; Baharak Hooshiar Kashani; Ugo A. Perego; Solomon G. Nergadze; Valeria Carossa; Marco Santagostino; Stefano Capomaccio; Michela Felicetti; Walid Al-Achkar; M. Cecilia T. Penedo; Andrea Verini-Supplizi; Massoud Houshmand; Scott R. Woodward; Ornella Semino; Maurizio Silvestrelli; Elena Giulotto; Luísa Pereira; Hans-Jürgen Bandelt; Antonio Torroni

Archaeological and genetic evidence concerning the time and mode of wild horse (Equus ferus) domestication is still debated. High levels of genetic diversity in horse mtDNA have been detected when analyzing the control region; recurrent mutations, however, tend to blur the structure of the phylogenetic tree. Here, we brought the horse mtDNA phylogeny to the highest level of molecular resolution by analyzing 83 mitochondrial genomes from modern horses across Asia, Europe, the Middle East, and the Americas. Our data reveal 18 major haplogroups (A–R) with radiation times that are mostly confined to the Neolithic and later periods and place the root of the phylogeny corresponding to the Ancestral Mare Mitogenome at ∼130–160 thousand years ago. All haplogroups were detected in modern horses from Asia, but F was only found in E. przewalskii—the only remaining wild horse. Therefore, a wide range of matrilineal lineages from the extinct E. ferus underwent domestication in the Eurasian steppes during the Eneolithic period and were transmitted to modern E. caballus breeds. Importantly, now that the major horse haplogroups have been defined, each with diagnostic mutational motifs (in both the coding and control regions), these haplotypes could be easily used to (i) classify well-preserved ancient remains, (ii) (re)assess the haplogroup variation of modern breeds, including Thoroughbreds, and (iii) evaluate the possible role of mtDNA backgrounds in racehorse performance.


Genome Research | 2012

Rapid coastal spread of First Americans: Novel insights from South America's Southern Cone mitochondrial genomes

Martin Bodner; Ugo A. Perego; Gabriela Huber; Liane Fendt; Alexander W. Röck; Bettina Zimmermann; Anna Olivieri; Alberto Gómez-Carballa; Hovirag Lancioni; Norman Angerhofer; María Cecilia Bobillo; Daniel Corach; Scott R. Woodward; Antonio Salas; Alessandro Achilli; Antonio Torroni; Hans-Jürgen Bandelt; Walther Parson

It is now widely agreed that the Native American founders originated from a Beringian source population ~15-18 thousand years ago (kya) and rapidly populated all of the New World, probably mainly following the Pacific coastal route. However, details about the migration into the Americas and the routes pursued on the continent still remain unresolved, despite numerous genetic, archaeological, and linguistic investigations. To examine the pioneering peopling phase of the South American continent, we screened literature and mtDNA databases and identified two novel mitochondrial DNA (mtDNA) clades, here named D1g and D1j, within the pan-American haplogroup D1. They both show overall rare occurrences but local high frequencies, and are essentially restricted to populations from the Southern Cone of South America (Chile and Argentina). We selected and completely sequenced 43 D1g and D1j mtDNA genomes applying highest quality standards. Molecular and phylogeographic analyses revealed extensive variation within each of the two clades and possibly distinct dispersal patterns. Their age estimates agree with the dating of the earliest archaeological sites in South America and indicate that the Paleo-Indian spread along the entire longitude of the American double continent might have taken even <2000 yr. This study confirms that major sampling and sequencing efforts are mandatory for uncovering all of the most basal variation in the Native American mtDNA haplogroups and for clarification of Paleo-Indian migrations, by targeting, if possible, both the general mixed population of national states and autochthonous Native American groups, especially in South America.


Proceedings of the National Academy of Sciences of the United States of America | 2013

Reconciling migration models to the Americas with the variation of North American native mitogenomes

Alessandro Achilli; Ugo A. Perego; Hovirag Lancioni; Anna Olivieri; Francesca Gandini; Baharak Hooshiar Kashani; Vincenza Battaglia; Viola Grugni; Norman Angerhofer; Mary P Rogers; Rene J. Herrera; Scott R. Woodward; Damian Labuda; David Glenn Smith; Jerome S. Cybulski; Ornella Semino; Ripan S. Malhi; Antonio Torroni

In this study we evaluated migration models to the Americas by using the information contained in native mitochondrial genomes (mitogenomes) from North America. Molecular and phylogeographic analyses of B2a mitogenomes, which are absent in Eskimo–Aleut and northern Na-Dene speakers, revealed that this haplogroup arose in North America ∼11–13 ka from one of the founder Paleo-Indian B2 mitogenomes. In contrast, haplogroup A2a, which is typical of Eskimo–Aleuts and Na-Dene, but also present in the easternmost Siberian groups, originated only 4–7 ka in Alaska, led to the first Paleo-Eskimo settlement of northern Canada and Greenland, and contributed to the formation of the Na-Dene gene pool. However, mitogenomes also show that Amerindians from northern North America, without any distinction between Na-Dene and non–Na-Dene, were heavily affected by an additional and distinctive Beringian genetic input. In conclusion, most mtDNA variation (along the double-continent) stems from the first wave from Beringia, which followed the Pacific coastal route. This was accompanied or followed by a second inland migratory event, marked by haplogroups X2a and C4c, which affected all Amerindian groups of Northern North America. Much later, the ancestral A2a carriers spread from Alaska, undertaking both a westward migration to Asia and an eastward expansion into the circumpolar regions of Canada. Thus, the first American founders left the greatest genetic mark but the original maternal makeup of North American Natives was subsequently reshaped by additional streams of gene flow and local population dynamics, making a three-wave view too simplistic.


American Journal of Human Genetics | 2009

Mitochondrial Haplogroup U5b3: A Distant Echo of the Epipaleolithic in Italy and the Legacy of the Early Sardinians

Maria Pala; Alessandro Achilli; Anna Olivieri; Baharak Hooshiar Kashani; Ugo A. Perego; Daria Sanna; Ene Metspalu; Kristiina Tambets; Erika Tamm; Matteo Accetturo; Valeria Carossa; Hovirag Lancioni; Fausto Panara; Bettina Zimmermann; Gabriela Huber; Nadia Al-Zahery; Francesca Brisighelli; Scott R. Woodward; Paolo Francalacci; Walther Parson; Antonio Salas; Doron M. Behar; Richard Villems; Ornella Semino; Hans-Jürgen Bandelt; Antonio Torroni

There are extensive data indicating that some glacial refuge zones of southern Europe (Franco-Cantabria, Balkans, and Ukraine) were major genetic sources for the human recolonization of the continent at the beginning of the Holocene. Intriguingly, there is no genetic evidence that the refuge area located in the Italian Peninsula contributed to this process. Here we show, through phylogeographic analyses of mitochondrial DNA (mtDNA) variation performed at the highest level of molecular resolution (52 entire mitochondrial genomes), that the most likely homeland for U5b3-a haplogroup present at a very low frequency across Europe-was the Italian Peninsula. In contrast to mtDNA haplogroups that expanded from other refugia, the Holocene expansion of haplogroup U5b3 toward the North was restricted by the Alps and occurred only along the Mediterranean coasts, mainly toward nearby Provence (southern France). From there, approximately 7,000-9,000 years ago, a subclade of this haplogroup moved to Sardinia, possibly as a result of the obsidian trade that linked the two regions, leaving a distinctive signature in the modern people of the island. This scenario strikingly matches the age, distribution, and postulated geographic source of a Sardinian Y chromosome haplogroup (I2a2-M26), a paradigmatic case in the European context of a founder event marking both female and male lineages.


PLOS ONE | 2011

Mitochondrial DNA backgrounds might modulate diabetes complications rather than T2DM as a whole.

Alessandro Achilli; Anna Olivieri; Maria Pala; Baharak Hooshiar Kashani; Valeria Carossa; Ugo A. Perego; Francesca Gandini; Aurelia Santoro; Vincenza Battaglia; Viola Grugni; Hovirag Lancioni; Cristina Sirolla; Anna Rita Bonfigli; Antonella Cormio; Massimo Boemi; Ivano Testa; Ornella Semino; Antonio Ceriello; Liana Spazzafumo; Maria Nicola Gadaleta; Maurizio Marra; Roberto Testa; Claudio Franceschi; Antonio Torroni

Mitochondrial dysfunction has been implicated in rare and common forms of type 2 diabetes (T2DM). Additionally, rare mitochondrial DNA (mtDNA) mutations have been shown to be causal for T2DM pathogenesis. So far, many studies have investigated the possibility that mtDNA variation might affect the risk of T2DM, however, when found, haplogroup association has been rarely replicated, even in related populations, possibly due to an inadequate level of haplogroup resolution. Effects of mtDNA variation on diabetes complications have also been proposed. However, additional studies evaluating the mitochondrial role on both T2DM and related complications are badly needed. To test the hypothesis of a mitochondrial genome effect on diabetes and its complications, we genotyped the mtDNAs of 466 T2DM patients and 438 controls from a regional population of central Italy (Marche). Based on the most updated mtDNA phylogeny, all 904 samples were classified into 57 different mitochondrial sub-haplogroups, thus reaching an unprecedented level of resolution. We then evaluated whether the susceptibility of developing T2DM or its complications differed among the identified haplogroups, considering also the potential effects of phenotypical and clinical variables. MtDNA backgrounds, even when based on a refined haplogroup classification, do not appear to play a role in developing T2DM despite a possible protective effect for the common European haplogroup H1, which harbors the G3010A transition in the MTRNR2 gene. In contrast, our data indicate that different mitochondrial haplogroups are significantly associated with an increased risk of specific diabetes complications: H (the most frequent European haplogroup) with retinopathy, H3 with neuropathy, U3 with nephropathy, and V with renal failure.


PLOS ONE | 2013

Monitoring DNA Contamination in Handled vs. Directly Excavated Ancient Human Skeletal Remains

Elena Pilli; Alessandra Modi; Ciro Serpico; Alessandro Achilli; Hovirag Lancioni; Barbara Lippi; Francesca Bertoldi; Sauro Gelichi; Martina Lari; David Caramelli

Bones, teeth and hair are often the only physical evidence of human or animal presence at an archaeological site; they are also the most widely used sources of samples for ancient DNA (aDNA) analysis. Unfortunately, the DNA extracted from ancient samples, already scarce and highly degraded, is widely susceptible to exogenous contaminations that can affect the reliability of aDNA studies. We evaluated the molecular effects of sample handling on five human skeletons freshly excavated from a cemetery dated between the 11 to the 14th century. We collected specimens from several skeletal areas (teeth, ribs, femurs and ulnas) from each individual burial. We then divided the samples into two different sets: one labeled as “virgin samples” (i.e. samples that were taken by archaeologists under contamination-controlled conditions and then immediately sent to the laboratory for genetic analyses), and the second called “lab samples”(i.e. samples that were handled without any particular precautions and subject to normal washing, handling and measuring procedures in the osteological lab). Our results show that genetic profiles from “lab samples” are incomplete or ambiguous in the different skeletal areas while a different outcome is observed in the “virgin samples” set. Generally, all specimens from different skeletal areas in the exception of teeth present incongruent results between “lab” and “virgin” samples. Therefore teeth are less prone to contamination than the other skeletal areas we analyzed and may be considered a material of choice for classical aDNA studies. In addition, we showed that bones can also be a good candidate for human aDNA analysis if they come directly from the excavation site and are accompanied by a clear taphonomic history.


PLOS ONE | 2015

Genealogical relationships between early medieval and modern inhabitants of Piedmont.

Stefania Vai; Silvia Ghirotto; Elena Pilli; Francesca Tassi; Martina Lari; Ermanno Rizzi; Laura Matas-Lalueza; Oscar Ramirez; Carles Lalueza-Fox; Alessandro Achilli; Anna Olivieri; Antonio Torroni; Hovirag Lancioni; Caterina Giostra; Elena Bedini; Luisella Pejrani Baricco; Giuseppe Matullo; Cornelia Di Gaetano; Alberto Piazza; Krishna R. Veeramah; Patrick J. Geary; David Caramelli; Guido Barbujani

In the period between 400 to 800 AD, also known as the period of the Barbarian invasions, intense migration is documented in the historical record of Europe. However, little is known about the demographic impact of these historical movements, potentially ranging from negligible to substantial. As a pilot study in a broader project on Medieval Europe, we sampled 102 specimens from 5 burial sites in Northwestern Italy, archaeologically classified as belonging to Lombards or Longobards, a Germanic people ruling over a vast section of the Italian peninsula from 568 to 774. We successfully amplified and typed the mitochondrial hypervariable region I (HVR-I) of 28 individuals. Comparisons of genetic diversity with other ancient populations and haplotype networks did not suggest that these samples are heterogeneous, and hence allowed us to jointly compare them with three isolated contemporary populations, and with a modern sample of a large city, representing a control for the effects of recent immigration. We then generated by serial coalescent simulations 16 millions of genealogies, contrasting a model of genealogical continuity with one in which the contemporary samples are genealogically independent from the medieval sample. Analyses by Approximate Bayesian Computation showed that the latter model fits the data in most cases, with one exception, Trino Vercellese, in which the evidence was compatible with persistence up to the present time of genetic features observed among this early medieval population. We conclude that it is possible, in general, to detect evidence of genealogical ties between medieval and specific modern populations. However, only seldom did mitochondrial DNA data allow us to reject with confidence either model tested, which indicates that broader analyses, based on larger assemblages of samples and genetic markers, are needed to understand in detail the effects of medieval migration.


Genome Research | 2012

Reconstructing ancient mitochondrial DNA links between Africa and Europe

María Cerezo; Alessandro Achilli; Anna Olivieri; Ugo A. Perego; Alberto Gómez-Carballa; Francesca Brisighelli; Hovirag Lancioni; Scott R. Woodward; Manuel López-Soto; Angel Carracedo; Cristian Capelli; Antonio Torroni; Antonio Salas

Mitochondrial DNA (mtDNA) lineages of macro-haplogroup L (excluding the derived L3 branches M and N) represent the majority of the typical sub-Saharan mtDNA variability. In Europe, these mtDNAs account for <1% of the total but, when analyzed at the level of control region, they show no signals of having evolved within the European continent, an observation that is compatible with a recent arrival from the African continent. To further evaluate this issue, we analyzed 69 mitochondrial genomes belonging to various L sublineages from a wide range of European populations. Phylogeographic analyses showed that ~65% of the European L lineages most likely arrived in rather recent historical times, including the Romanization period, the Arab conquest of the Iberian Peninsula and Sicily, and during the period of the Atlantic slave trade. However, the remaining 35% of L mtDNAs form European-specific subclades, revealing that there was gene flow from sub-Saharan Africa toward Europe as early as 11,000 yr ago.


American Journal of Physical Anthropology | 2012

Mitochondrial haplogroup C4c: A rare lineage entering America through the ice‐free corridor?

Baharak Hooshiar Kashani; Ugo A. Perego; Anna Olivieri; Norman Angerhofer; Francesca Gandini; Valeria Carossa; Hovirag Lancioni; Ornella Semino; Scott R. Woodward; Alessandro Achilli; Antonio Torroni

Recent analyses of mitochondrial genomes from Native Americans have brought the overall number of recognized maternal founding lineages from just four to a current count of 15. However, because of their relative low frequency, almost nothing is known for some of these lineages. This leaves a considerable void in understanding the events that led to the colonization of the Americas following the Last Glacial Maximum (LGM). In this study, we identified and completely sequenced 14 mitochondrial DNAs belonging to one extremely rare Native American lineage known as haplogroup C4c. Its age and geographical distribution raise the possibility that C4c marked the Paleo-Indian group(s) that entered North America from Beringia through the ice-free corridor between the Laurentide and Cordilleran ice sheets. The similarities in ages andgeographical distributions for C4c and the previously analyzed X2a lineage provide support to the scenario of a dual origin for Paleo-Indians. Taking into account that C4c is deeply rooted in the Asian portion of the mtDNA phylogeny and is indubitably of Asian origin, the finding that C4c and X2a are characterized by parallel genetic histories definitively dismisses the controversial hypothesis of an Atlantic glacial entry route into North America.

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Antonio Torroni

Sapienza University of Rome

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