Tag: native species

  • Reintroducing Kenya’s Threatened Trees and Shrubs in the Highlands Through Science and Community Action

    Reintroducing Kenya’s Threatened Trees and Shrubs in the Highlands Through Science and Community Action

    By Tobin Mutiso and Andrew Gichira 

    Tobin Mutiso is a research associate at the Centre for Ecosystem Restoration Kenya (CER-K). He works on plant ecology and taxonomy. He holds a BSc in plant ecology and environmental science from Jomo Kenyatta University of Science and Technology. Email: tmutiso@cerkenya.org

    Andrew Gichira, PhD, is a botanist and restoration ecologist specialising in conservation genetics and ecosystem restoration. He currently serves as the head of research at the CER-K. Email: agichira@cerkenya.org

    Members of Community Forest Association (CFA) and trainers standing beside a mature Euphorbia cussonioides at Blue Post, Thikaafter a training on phenology monitoring, seed collection, and species-specific propagation techniques. Subsequently, other seedlings and mature individuals of this species were identified in Ndula Village, approximately 22 km from this site. Photo by Tobin Mutiso.

    The loss of native plant diversity is reshaping Kenya’s ecosystems in ways that are often subtle but deeply consequential. As woody plant species disappear, so do the ecological functions they support, including soil stabilisation along rivers, food and habitat for wildlife, local climate regulation, and cultural and livelihood values tied to native landscapes. According to the IUCN Red List, national reports, and NGO summaries assessing East African trees, roughly 13% of Kenya’s native tree species are threatened with extinction. Most persist in small, isolated stands where natural regeneration is compromised. 

    Natural regeneration becomes increasingly difficult for woody species with very small isolated populations in fragmented landscapes. This is because plants depend heavily on trophic interactions such as complex plant-pollinator relationships.  When these factors are compromised, seed production becomes irregular, which is further compounded with limited capacity of seedlings to establish in degraded and altered habitats. Even in places with improved protection, these species often fail to recover without deliberate conservation intervention. This reality presents a challenge for restoration efforts that rely heavily on a narrow set of fast-growing or readily available species, leaving threatened trees further marginalised and the ecosystems in which they are a key part vulnerable to further degradation and fragmentation. 

    Tree and shrub planting initiatives are expanding rapidly, but their contribution to biodiversity recovery depends on whether the species planted match local ecological conditions. Evidence-driven species selection, combined with local capacity to manage planted trees, remains unevenly distributed across projects, with technical guidance often outpacing on-the-ground monitoring. Threatened plant species, in particular, require targeted support, including improved data on their distribution, a deeper understanding of their ecology, tailored propagation and reintroduction protocols, and long-term care, which can be integrated into local land-use systems.

    Our project aims to investigate whether a species-focused reintroduction model can be effective in real-world conditions. Working with community forest associations, we have selected 22 threatened tree species, developing propagation methods for each and planting them in multiple sites managed by local communities. The central question is whether ecological restoration, species reintroduction and livelihood benefits could be pursued together without compromising the other. By integrating herbarium records, expert knowledge, targeted field science, and community engagement, we are building a reintroduction and restoration model that is both ecologically fit for purpose and socially sustainable, as well as adaptable to other landscapes facing similar biodiversity loss.

    The project is within the Kenyan Highlands, a section of the complex montane ecosystem in East Africa characterised by high habitat heterogeneity and notable levels of biodiversity and endemism (Gehrke & Linder, 2014; Dagallier et al., 2020). Kenya is subdivided into seven plant divisions (K1-K7), which are largely based on the early administrative boundaries (Zhou et al., 2017). Our surveys targeted multiple elevation zones, with a primary focus on the K4 region (1,500–3,000 m) within the central highlands and additional coverage of K7 (Taita Hills, 600–1,640 m) and K6 (Loita Forest, 2,000–2,300 m). Several focal species occur outside the central highlands but occupy comparable altitudinal ranges elsewhere in the country. This broad elevational gradient contributes to high floristic diversity, making the K4 zone a hotspot for Rare, Endangered, and Threatened (RET) species, particularly those of high conservation and use value, including timber and medicinal species such as Ixora scheffleri subsp. keniensis Bridson,  Prunus africana (Hook. f.) Kalkman  and Warburgia ugandensis Sprague.

    The seven phytogeographical divisions recognised in the Flora of Tropical East Africa. K4 and K7 are the most species-rich regions: K4 represents the central Kenyan highlands (~ 1,200–3,000 m above sea level). K7 mainly comprises the coastal lowlands of Kenya (0–150 m.a.s.l.) with some inland highland areas e.g., the Taita Hills (~1,000–2,200 m.a.s.l.). K2 zone also covers the Ilemi area at the northern border. This study focuses on threatened plant species occurring in high-elevation habitats (1,500 m – 3,000 m.a.s.l).

    Starting in the Archives: the herbarium as a roadmap

    This work began not in the field, but at the East Africa Herbarium at the National Museums of Kenya. Herbarium specimens, some collected more than a century ago, provided the most reliable baseline for understanding where threatened tree species historically occurred. We also consulted international databases, most notably the Global Biodiversity Information Facility (GBIF). These collections helped trace former distributions, habitat preferences, and altitudinal ranges for species now rarely encountered in the wild.

    Table 1: A list of 22 woody species that were targeted for the study based on observations recorded at the East Africa Herbarium and the Global Biodiversity Information Facility. Accessed in June, 2022.

    This archival work was complemented by key informant interviews with experienced taxonomists. Their insights helped resolve identification challenges, clarify taxonomic updates, and flag species frequently overlooked in restoration programmes. Surveys of commercial nurseries in the coastal regions further highlighted how threatened native trees and shrubs are systematically neglected in favour of exotic or common species. Literature reviews added further context, helping reconstruct historical range patterns and identify priority floristic regions for field verification. Together, these sources allowed us to move beyond generalized restoration species lists and ask more focused questions, specifically: where do these threatened species still exist, where have they been lost, where does restoration make sense, and, can we create a socio-economic model that sustainably uplifts the livelihoods of local communities while also supporting efforts for ecological and biocultural restoration? 

    Field expeditions and new records

    Guided by this evidence, we carried out targeted field expeditions across multiple landscapes in the Kenyan highlands, spanning 11 counties, including Taita Hills, Kijenge Hills, Thika, Irangi Forest, Ngaya, Thushi River, Nyambene Hills, Imenti Forest and Karura Forest, as well as selected dryland and forest-edge systems, in particular the Loita Hills. These surveys were designed not just to confirm presence or absence but to generate practical ecological insights for restoration practitioners.

    Map of survey areas in the Kenyan Highlands. The sites are distributed in phytogeographical zones K4 and K7, with a single record in K6.

    In several locations, fieldwork led to the identification of new records or previously undocumented populations. The most significant findings surrounded Euphorbia cussonioides (CR) and Brucea macrocarpa (EN), both species whose known populations have declined significantly in recent decades. Newly recorded individuals and regenerants provided urgently needed information on the species’ current area of occupancy and viable seed sources, as well as evidence that recovery is still possible if sites are protected and managed. Observations of flowering and fruiting patterns revealed clear opportunities for seed collection and assisted regeneration. Other threatened species encountered during surveys included Ixora scheffleri subsp. keniensis (CR), Embelia keniensis R.E. Fr. (CR) , Encephalartos kisambo Faden & Beentje (EN), and Vepris hanangensis (Kokwaro) Mziray (NT). 

    Table 2. Newly documented populations and occurrence records of selected threatened woody plant species.

    Newly documented natural regeneration (wildlings) of Euphorbia cussonioides were recorded during field surveys at Nkopon village in the Loita Hills. Photo by B. Maina.

    At each site, we recorded location, habitat condition, land-use context, population structure, regeneration status, threats, and phenological stage. This level of ecological detail transformed field observations into decision-ready data, helping bridge the gap between research and restoration action.

    Communities as conservation partners

    From the outset, the project treated local communities as central partners and not just beneficiaries. In areas where threatened species occurred on private or community-managed land, we worked closely with landowners, community forest associations (CFA), and local scouts to monitor the phenophases and liaise with local nurseries in propagating the seeds. In addition, the Kenya Forest Service (KFS) provided planting locations and collaborated with the CFAs to oversee and care for the seedlings.

    Training focused on practical, transferable skills, in particular: educating the community on the reasons we conserve plants, identifying threatened tree species, monitoring phenology to track flowering and fruiting cycles, collecting seed ethically with genetic diversity in mind, and applying appropriate propagation techniques. We engaged and trained 138 community seed collectors active as community phenology monitors and seed collectors.

    Community members in Embu, Kenya, are undertaking phenology monitoring and seed collection during a training session at Ngaya Forest. Photo by T. Mutiso.

    At Ngaya forest, Thika’s Blue Post, Kasigau (Taita) and Upper and Lower Imenti forests, community members were trained to identify threatened woody species in situ using diagnostic morphological traits, to map and tag individual plants, and apply basic protection measures to reduce disturbance. They also monitored flowering and fruit development to inform seed collection and to rescue naturally regenerated wildlings at risk from competition with invasive species, most notably Lantana camara. This hands-on engagement directly supported the propagation of Brucea macrocarpa,Pandanus kajuiGymnosporia keniensisCylicomorpha parvifloraPremna maximaVepris glandulosa, and Euphorbia cussonioides.

    Pandanus kajui seedlings propagated in Kithunguthia (Embu) community nursery. Photo by T. Mutiso.

    These efforts produced tangible outcomes, with over 28,000 seedlings of threatened species raised in community nurseries in Antubetwe (Ngaya Forest), Kasigau (Taita), Kithunguthia (Embu), Male (Laikipia), Kenya Forest Service (Meru), and Kamaruki (Nyambene), thereby creating viable restoration planting stock. Livelihood benefits were created through project-funded payments for seed collection, nursery establishment and management, and continued after-care management of planted seedlings. The financial support is largely from the Fondation Franklinia, and the funds are channelled through the Community Forest Associations. Building on the outcomes of the grant, we developed a community-based seed collection model in which trained local collectors form a coordinated network that sources seeds from RET taxa as well as other native plant species and supplies them to institutional seed banks. These seeds are subsequently made available to restoration practitioners for use in active restoration initiatives. Revenue generated through seed sales is reinvested to remunerate community seed collectors, thereby establishing a sustainable and locally grounded alternative income stream while reinforcing conservation and restoration objectives. The project’s impact and details of the community engagement aspects have been comprehensively outlined in an article published in the BGJournal Vol 22 (1), Seed banks for Biodiversity pages 39-42. 

    Building practical tools for practitioners

    Under this framework, the project has generated insights that have now been consolidated into practical tools for wider application, including species-specific propagation protocols shared with spatial databases linking historical and new records, producing phenology calendars to guide seed collection for threatened and non-threatened native plant species, and a structured framework for community engagement. Currently, the project has generated 21 propagation protocols for the 22 threatened species, including Uvariodendron anisatum, Brucea macrocarpa, Croton alienus, Euphorbia cussonioides, and Premna maxima, whilst others are still under review.  In addition to these tools, a growing network of restoration sites and partner nurseries is being established, enabling peer learning, harmonisation techniques, and coordinated tracking of threatened species across landscapes. The emerging practitioner network is now being facilitated through CER-K. 

    Restoring Kenya’s endangered trees and shrubs to the Highlands is an act of optimism, responsibility, and restoration, rather than just an ecological exercise. We are using science to pinpoint which species once flourished in Kenya’s phytogeographical regions, understand the reasons behind their decline, and determine the most effective way to bring them back. By taking community action, we ensure that restoration is long-lasting rather than temporary. As a result, the communities themselves own, maintain, and strengthen the conservation of threatened species rather than having it imposed upon them. We aim to increase the number of threatened species sites we survey, improve monitoring, develop a practitioner network, and continue to accumulate knowledge that informs successful conservation both in situ and ex situ. Visit https://cerkenya.org/ for more information on our work in general and in threatened species conservation in particular. 

  • Native Plant Seeding Solutions for High Disturbance Highway Roadsides

    Native Plant Seeding Solutions for High Disturbance Highway Roadsides

    By Wes Bollinger

    Wes Bollinger completed his master’s in 2025 with Jeffrey Matthews lab in the Department of Natural Resources and Environmental Sciences at the University of Illinois. Wes is now a restoration ecologist in Chicago and runs his own restoration consulting business – Wildshape Ecological Design.

    The modern American landscape is crosscut by millions of miles of roadways. This land that was previously part of intact ecosystems has been converted into impermeable pavement and ditches, reducing the quantity and quality of habitat. Roadways also lead to habitat fragments, which can impede the movement of animals around the landscape. Highways in the Midwest (Illinois, Indiana, Iowa, Michigan, Minnesota, Missouri, Ohio, and Wisconsin) amount to more than 100,000 centerline miles (160,934 km) of roadway, and their unpaved right-of-way (roadside margins, medians, interchanges, etc.) total over 1,010,000 acres (445,000 ha) of unpaved land and soil. Highway roadsides typically experience high rates of disturbance due to wind, vehicle traffic and pollution from oil, microplastics from tires and litter, and often agricultural additives like herbicides, insecticides, and fertilizers. These lands and similar areas adjacent to roadways may be either burden or boon to the local ecosystem depending on management regimes and use of disturbance tolerant plant species. Here I recommend an approach to identifying appropriate native species for roadside vegetation, but this perspective may also apply to a variety of marginal greenspaces, such as residential sidewalk strips.

    Native species dominated restoration project on a highway roadside in Northern Illinois. Visible flowerheads are pale purple coneflower (Echinacea pallida), lanceleaf coreopsis (Coreopsis lanceolata), black-eyed Susan (Rudbeckia hirta), and Canada wildrye (Elymus canadensis). Photo by Wes Bollinger.

    If poorly managed, rights-of-way can become heavily invaded by nonnative plants like common reed (Phragmites australis), teasel (Dipsacus fullonumDipsacus laciniatus), and Johnsongrass (Sorghum halepense) among many others. These invasive species inhibit the native grasses and forbs and reduce ecosystem functioning. When heavily invaded, roadsides also cause economic impacts, functioning as source populations of weeds that can impact adjacent agroecosystems. Typically, roadsides are seeded with a mixture of Eurasian turfgrasses like Kentucky bluegrass (Poa pratensis) and red fescue (Festuca rubra). These nonnative grasses are comparatively short both in their above- and below-ground growth. Their short roots do not inhibit the growth of undesirable nonnative species, resulting in more mowing and maintenance than a native plant community to keep areas appearing ‘pristine.’ 

    However, roadsides can be restored with native species and managed using best practices to provide economic and environmental benefits to the region. Native-dominated vegetation can inhibit invasion, protect nearby remnant habitats, promote healthy soil, improve stormwater retention, absorb agricultural additives, sequester carbon, and provide forage and migration corridors for native animals. Though establishing native vegetation on roadsides may have these obvious benefits, there are many knowledge gaps pertaining to this practice such as how and what to seed in these areas to maintain the highest ecosystem fidelity and greatest economic benefits.

    We conducted research to determine which native species to seed on highways and the best practices for establishment and maintenance of these areas, with the goals of lowering overall maintenance costs by reducing the frequency of mowing needed to maintain these areas. This work was funded through grants from the Illinois and Indiana Departments of Transportation (DOTs) in conjunction with the Illinois Center for Transportation and the University of Illinois.

    I carried out three projects to gain empirical evidence on how to restore Midwestern roadsides with native species. Project 1) reviewed the native seeding practices of the DOTs of the Midwest to identify commonly seeded species and assessed establishment and management practices. For Project 2) we conducted experimental trials in Illinois comparing existing Illinois DOT mixes (non-native and partially native) with novel mixes that we designed to be more diverse and contain only native species. For Project 3) we conducted a field survey of existing native roadside plantings across Illinois and Indiana. Projects 2 and 3 sought to quantify the performance of individual species to determine which ones have the greatest establishment and persistence in roadside conditions, and what conditions lead to favorable native establishment generally.

    Project 1) Current native seeding and management practices

    My review of Midwestern DOT seeding practices revealed stark differences between DOTs among states, but some commonalities that are noteworthy for establishment and maintenance. Most interestingly was the disparity in native diversity between states. Michigan did not list any native species in their roadside manual, while Minnesota listed 108, the most of any Midwestern DOT. Further, Minnesota listed 11 majority or entirely native seed mixes and had the most comprehensive standard operating procedures for native seeding. Many mixes had average max heights under 3 ft (~1m) to avoid obscuring motorists views on roadsides; however, some states had mixes more than 5 ft (~1.5 m) for tallgrass areas and to increase the invasion resistance of an area by blocking light access with taller plants. Perhaps surprisingly, the states of Ohio and Indiana still list an invasive legume, crownvetch (Securigera varia), in mixes designed for erosion control.

    Number of majority native species mixes listed by Midwestern Department of Transportation in order of most to least native species (n) listed.

    Several establishment methods were common across states. Native seeds should be sown into low-fertility topsoil using a hydroseeding machine (a device that sprays a mixture of seed, water, and an organic adhesive agent directly onto soil) especially on sloped areas. Hydroseeders show remarkable success in soils with a seed bank containing invasive species, by avoiding tillage which can bring these seeds to the surface and increase their germination. Native straw can be applied as a mulch layer and may be harvested from areas scheduled for maintenance with mowing. Seeding should take place in the fall to allow for cold stratification. Local ecotype seeds are preferred to produce individuals with locally adapted phenotypes and avoid genetic contamination with seeds harvested outside the region. Mowing in the first year of growth is critical to reduce invasive species while native seedlings establish. Minnesota recommends three mows in year one, in May, June, and July, and a singular mow between July and August of year two. Controlled burning of these areas is ideal every 3-5 years but mowing at the same rate is also beneficial. 

    Project 2) Comparative performance of standard (mixed origin) and native-only mixes

    As a method of direct comparison between existing DOT seed mixes and a fully native roadside, I established four trials across Illinois to test differences in seeded, native, seeded native, and nonnative unseeded plant cover and richness, thus also providing information on invasion resistance between four popular mixes (DOT lawn, roadside, north IL, south IL) and four corresponding fully native plant mixes I designed to meet the same general criteria (low growing, disturbance, and salt tolerant) while also being higher diversity (from 9 to 38 species depending on mix). These experimental plots were seeded in November 2023 and surveyed in May and August of 2024. I observed that plantings differed in degrees of success, but every trial showed at least one significant positive result for the native planting over the nonnative IDOT mix. Native richness was higher for all sites by August of the first growing year, and native cover was higher for three of the four experiments. My trial of the IDOT Class 3 North Slope mix against a mix of 38 native species yielded significantly higher seeded cover by August 2024, and higher richness and cover of all native species in both May and August, suggesting that this high diversity mix competed very well against an existing DOT mix which was a combination of native forbs and nonnative grasses. Based on preliminary data collected during 2025, the native species are continuing to outpace the nonnatives in these mixes. 

    Of the native species seeded in these trials, those with the greatest record of germination in year one are lanceleaf coreopsis (Coreopsis lanceolata), common milkweed (Asclepias syriaca), partridge pea (Chamaecrista fasciculata), Illinois bundleflower (Desmanthus illinoensis), pale purple coneflower (Echinacea pallida), common evening primrose (Oenothera biennis), golden Alexander (Zizia aurea), blue vervain (Verbena stricta), and plains oval sedge (Carex brevior), which were present in the first year between 50% and100% of plots they were seeded in.

    Example paired plot before site prep and seeding (left) and August of the first growth year after establishment (right). IDOT mix on the left, native mix on the right of each image. Yellow flowers are golden Alexanders (Zizia aurea). Photo by Wes Bollinger.

    Project 3) Identifying the most successful native species from field surveys

    Lastly, I surveyed 34 native plantings on roadways across Illinois and Indiana at various distances from the road edge while collecting data on soil chemistry, surrounding land use, and soil compaction. Sites were more than two years old to avoid plantings early in their establishment. The purpose of this project was to identify which seeded species tend to germinate and persist, and what environmental factors contribute to higher native and invasive success. Of the 153 native species seeded in one or more sites, we found that 28 native species were observed in at least half of the planted sites and 84 species were never observed once despite being seeded in anywhere from one to 12 sites. Five species were found a total of 10 or more times each across all 34 sites: common milkweed (Asclepias syriaca), bee-balm (Monarda fistulosa), black-eyed Susan (Rudbeckia hirta), false sunflower (Heliopsis helianthoides), and switchgrass (Panicum virgatum). These five species along with Virginia wildrye (Elymus virginicus) were also the most observed species at sites where they were seeded. These surveys were not designed to be comprehensive given the size of many of these plantings and it is highly probable some other seeded species were present but unobserved.

    I found that native diversity and cover were generally higher further from the road edge, in areas with less salt, more basic soil, lower nitrogen and phosphorous, and a higher seed mix diversity. The opposite was true for nonnative cover and diversity. Richness of the seeded native mix was one of the strongest determinants of both diversity and cover. 

    In summary, we recommend that seed mixes should be hydroseeded at a rate of 60-70 seeds per square ft. (650-750 seeds per square meter) into low-nutrient, unfertilized soils, and covered in native straw. High-diversity mixes with no more than 10% legumes and an otherwise equal ratio of grasses to forbs should be used. Several species (but no more than 10%) should be early-establishing annual forbs for first year cover. Select species so that there is at least one blooming at all times of the growing season, favoring plants like golden Alexander (Zizia aurea) and native Alliumspecies for early spring blooms. Seed in as large an area as possible to reduce edge effects, consider cloverleaf interchanges as ideal locations for large projects.

    For maintenance in year one post-seeding, mow several times (May, June, July, potentially also August in warmer states) to a height of 6-8 inches. In year two, mow at least once between June and September. Controlled burning or mowing can be conducted as needed for persistent weed issues but generally are only required every three to five years. If mowing is needed, areas with low abundance of non-native plants can be harvested as native straw for future plantings.

    Native species with the best establishment record and widest usage are as follows and should be prioritized in high disturbance roadside plantings: Asclepias syriacaAsclepias verticillataBouteloua curtipendulaCarex breviorCarex cristatellaCarex hystericinaChamaecrista fasciculataCoreopsis lanceolataDalea purpureaDesmanthus illinoensisEchinacea purpureaElymus canadensisElymus virginicusEryngium yuccifoliumEupatorium perfoliatumHelianthus grosseserratusHeliopsis helianthoidesJuncus effususMonarda fistulosaOenothera biennisPanicum virgatumPenstemon digitalisPhysostegia virginianaPycnanthemum tenuifoliumRatibida pinnataRudbeckia hirtaSilphium laciniatumSymphyotrichum novae-angliaeSymphyotrichum puniceumLiatris pycnostachyaVerbena strictaVernonia fasciculataand Zizia aurea.

    Further details and methods can be found in the thesis here or by contacting the author at info@wildshaperestoration.com